Spaces:
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Update app.py
Browse files
app.py
CHANGED
@@ -7,6 +7,9 @@ import random
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import uuid
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import concurrent.futures
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import threading
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from datetime import datetime, timedelta
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from apscheduler.schedulers.background import BackgroundScheduler
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from flask import Flask, request, jsonify, Response, stream_with_context
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@@ -545,9 +548,178 @@ def check_tokens():
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)
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return jsonify(results)
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if not check_authorization(request):
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return jsonify({"error": "Unauthorized"}), 401
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@@ -556,13 +728,11 @@ def handsome_chat_completions():
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return jsonify({"error": "Invalid request data"}), 400
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model_name = data['model']
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request_type = determine_request_type(
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model_name,
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)
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api_key = select_key(request_type, model_name)
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if not api_key:
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@@ -580,692 +750,23 @@ def handsome_chat_completions():
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"Authorization": f"Bearer {api_key}",
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"Content-Type": "application/json"
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}
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if model_name in image_models:
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# Handle image generation
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user_content = ""
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messages = data.get("messages", [])
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for message in messages:
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if message["role"] == "user":
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if isinstance(message["content"], str):
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user_content += message["content"] + " "
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elif isinstance(message["content"], list):
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for item in message["content"]:
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if (
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isinstance(item, dict) and
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item.get("type") == "text"
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):
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user_content += (
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item.get("text", "") +
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" "
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)
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user_content = user_content.strip()
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# Map OpenAI-style parameters to SiliconFlow's parameters
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siliconflow_data = {
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"model": model_name,
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"prompt": user_content,
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"image_size": "1024x1024", # Default value
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"batch_size": 1, # Default value
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"num_inference_steps": 20, # Default value
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"guidance_scale": 7.5, # Default value
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"prompt_enhancement": False, # Default value
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}
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siliconflow_data["guidance_scale"] = data.get("guidance_scale")
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if data.get("negative_prompt"):
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siliconflow_data["negative_prompt"] = data.get("negative_prompt")
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if data.get("seed"):
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siliconflow_data["seed"] = data.get("seed")
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siliconflow_data["batch_size"] = 1
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if siliconflow_data["batch_size"] > 4:
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siliconflow_data["batch_size"] = 4
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if siliconflow_data["guidance_scale"] < 0:
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siliconflow_data["guidance_scale"] = 0
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if siliconflow_data["guidance_scale"] > 100:
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siliconflow_data["guidance_scale"] = 100
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if siliconflow_data["image_size"] not in ["1024x1024", "512x1024", "768x512", "768x1024", "1024x576", "576x1024"]:
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siliconflow_data["image_size"] = "1024x1024"
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try:
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start_time = time.time()
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response = requests.post(
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"https://api.siliconflow.cn/v1/images/generations",
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headers=headers,
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json=siliconflow_data,
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timeout=120,
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stream=data.get("stream", False)
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)
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if response.status_code == 429:
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return jsonify(response.json()), 429
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if data.get("stream", False):
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def generate():
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first_chunk_time = None
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full_response_content = ""
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try:
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response.raise_for_status()
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end_time = time.time()
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response_json = response.json()
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total_time = end_time - start_time
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images = response_json.get("images", [])
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# Extract the first URL if available
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image_url = ""
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if images and isinstance(images[0], dict) and "url" in images[0]:
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image_url = images[0]["url"]
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logging.info(f"Extracted image URL: {image_url}")
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elif images and isinstance(images[0], str):
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image_url = images[0]
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logging.info(f"Extracted image URL: {image_url}")
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markdown_image_link = f"![image]({image_url})"
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if image_url:
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chunk_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion.chunk",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"delta": {
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"role": "assistant",
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"content": markdown_image_link
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},
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"finish_reason": None
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}
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]
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}
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yield f"data: {json.dumps(chunk_data)}\n\n".encode('utf-8')
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full_response_content = markdown_image_link
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else:
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chunk_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion.chunk",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"delta": {
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"role": "assistant",
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"content": "Failed to generate image"
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},
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"finish_reason": None
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}
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]
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}
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yield f"data: {json.dumps(chunk_data)}\n\n".encode('utf-8')
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full_response_content = "Failed to generate image"
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end_chunk_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion.chunk",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"delta": {},
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"finish_reason": "stop"
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}
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]
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}
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yield f"data: {json.dumps(end_chunk_data)}\n\n".encode('utf-8')
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with data_lock:
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request_timestamps.append(time.time())
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token_counts.append(0) # Image generation doesn't use tokens
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except requests.exceptions.RequestException as e:
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logging.error(f"请求转发异常: {e}")
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error_chunk_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion.chunk",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"delta": {
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"role": "assistant",
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"content": f"Error: {str(e)}"
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},
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"finish_reason": None
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}
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]
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}
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yield f"data: {json.dumps(error_chunk_data)}\n\n".encode('utf-8')
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end_chunk_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion.chunk",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"delta": {},
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"finish_reason": "stop"
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}
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]
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}
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yield f"data: {json.dumps(end_chunk_data)}\n\n".encode('utf-8')
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logging.info(
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f"使用的key: {api_key}, "
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f"使用的模型: {model_name}"
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)
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yield "data: [DONE]\n\n".encode('utf-8')
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return Response(stream_with_context(generate()), content_type='text/event-stream')
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else:
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response.raise_for_status()
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end_time = time.time()
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response_json = response.json()
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total_time = end_time - start_time
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try:
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images = response_json.get("images", [])
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# Extract the first URL if available
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image_url = ""
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if images and isinstance(images[0], dict) and "url" in images[0]:
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image_url = images[0]["url"]
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logging.info(f"Extracted image URL: {image_url}")
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elif images and isinstance(images[0], str):
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image_url = images[0]
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logging.info(f"Extracted image URL: {image_url}")
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markdown_image_link = f"![image]({image_url})"
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# Construct the expected JSON output - Mimicking OpenAI
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response_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"message": {
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"role": "assistant",
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"content": markdown_image_link if image_url else "Failed to generate image", # Directly return the URL in content
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},
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"finish_reason": "stop",
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}
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],
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}
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except (KeyError, ValueError, IndexError) as e:
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logging.error(
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f"解析响应 JSON 失败: {e}, "
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f"完整内容: {response_json}"
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)
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response_data = {
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"id": f"chatcmpl-{uuid.uuid4()}",
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"object": "chat.completion",
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"created": int(time.time()),
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"model": model_name,
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"choices": [
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{
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"index": 0,
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"message": {
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"role": "assistant",
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"content": "Failed to process image data",
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},
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"finish_reason": "stop",
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}
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],
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}
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logging.info(
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f"使用的key: {api_key}, "
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f"总共用时: {total_time:.4f}秒, "
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f"使用的模型: {model_name}"
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)
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with data_lock:
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request_timestamps.append(time.time())
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847 |
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token_counts.append(0) # Image generation doesn't use tokens
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return jsonify(response_data)
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except requests.exceptions.RequestException as e:
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logging.error(f"请求转发异常: {e}")
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return jsonify({"error": str(e)}), 500
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853 |
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else:
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854 |
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# Existing text-based model handling logic
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try:
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start_time = time.time()
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857 |
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response = requests.post(
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TEST_MODEL_ENDPOINT,
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headers=headers,
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json=data,
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861 |
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stream=data.get("stream", False),
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timeout=60
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)
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864 |
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if response.status_code == 429:
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return jsonify(response.json()), 429
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866 |
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867 |
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if data.get("stream", False):
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def generate():
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first_chunk_time = None
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870 |
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full_response_content = ""
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871 |
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for chunk in response.iter_content(chunk_size=1024):
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872 |
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if chunk:
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873 |
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if first_chunk_time is None:
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874 |
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first_chunk_time = time.time()
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875 |
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full_response_content += chunk.decode("utf-8")
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yield chunk
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877 |
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end_time = time.time()
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879 |
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first_token_time = (
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first_chunk_time - start_time
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if first_chunk_time else 0
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)
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total_time = end_time - start_time
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884 |
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885 |
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prompt_tokens = 0
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886 |
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completion_tokens = 0
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response_content = ""
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888 |
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for line in full_response_content.splitlines():
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889 |
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if line.startswith("data:"):
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line = line[5:].strip()
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if line == "[DONE]":
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continue
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try:
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894 |
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response_json = json.loads(line)
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895 |
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896 |
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if (
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"usage" in response_json and
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"completion_tokens" in response_json["usage"]
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):
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900 |
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completion_tokens = response_json[
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"usage"
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]["completion_tokens"]
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903 |
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if (
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"choices" in response_json and
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len(response_json["choices"]) > 0 and
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907 |
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"delta" in response_json["choices"][0] and
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908 |
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"content" in response_json[
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909 |
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"choices"
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][0]["delta"]
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):
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response_content += response_json[
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"choices"
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][0]["delta"]["content"]
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if (
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"usage" in response_json and
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"prompt_tokens" in response_json["usage"]
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):
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920 |
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prompt_tokens = response_json[
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"usage"
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922 |
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]["prompt_tokens"]
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923 |
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924 |
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except (
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925 |
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KeyError,
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926 |
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ValueError,
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927 |
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IndexError
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928 |
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) as e:
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929 |
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logging.error(
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930 |
-
f"解析流式响应单行 JSON 失败: {e}, "
|
931 |
-
f"行内容: {line}"
|
932 |
-
)
|
933 |
-
|
934 |
-
user_content = ""
|
935 |
-
messages = data.get("messages", [])
|
936 |
-
for message in messages:
|
937 |
-
if message["role"] == "user":
|
938 |
-
if isinstance(message["content"], str):
|
939 |
-
user_content += message["content"] + " "
|
940 |
-
elif isinstance(message["content"], list):
|
941 |
-
for item in message["content"]:
|
942 |
-
if (
|
943 |
-
isinstance(item, dict) and
|
944 |
-
item.get("type") == "text"
|
945 |
-
):
|
946 |
-
user_content += (
|
947 |
-
item.get("text", "") +
|
948 |
-
" "
|
949 |
-
)
|
950 |
-
|
951 |
-
user_content = user_content.strip()
|
952 |
-
|
953 |
-
user_content_replaced = user_content.replace(
|
954 |
-
'\n', '\\n'
|
955 |
-
).replace('\r', '\\n')
|
956 |
-
response_content_replaced = response_content.replace(
|
957 |
-
'\n', '\\n'
|
958 |
-
).replace('\r', '\\n')
|
959 |
-
|
960 |
-
logging.info(
|
961 |
-
f"使用的key: {api_key}, "
|
962 |
-
f"提示token: {prompt_tokens}, "
|
963 |
-
f"输出token: {completion_tokens}, "
|
964 |
-
f"首字用时: {first_token_time:.4f}秒, "
|
965 |
-
f"总共用时: {total_time:.4f}秒, "
|
966 |
-
f"使用的模型: {model_name}, "
|
967 |
-
f"用户的内容: {user_content_replaced}, "
|
968 |
-
f"输出的内容: {response_content_replaced}"
|
969 |
-
)
|
970 |
-
|
971 |
-
with data_lock:
|
972 |
-
request_timestamps.append(time.time())
|
973 |
-
token_counts.append(prompt_tokens+completion_tokens)
|
974 |
-
|
975 |
-
return Response(
|
976 |
-
stream_with_context(generate()),
|
977 |
-
content_type=response.headers['Content-Type']
|
978 |
-
)
|
979 |
-
else:
|
980 |
-
response.raise_for_status()
|
981 |
-
end_time = time.time()
|
982 |
-
response_json = response.json()
|
983 |
-
total_time = end_time - start_time
|
984 |
-
|
985 |
-
try:
|
986 |
-
prompt_tokens = response_json["usage"]["prompt_tokens"]
|
987 |
-
completion_tokens = response_json[
|
988 |
-
"usage"
|
989 |
-
]["completion_tokens"]
|
990 |
-
response_content = response_json[
|
991 |
-
"choices"
|
992 |
-
][0]["message"]["content"]
|
993 |
-
except (KeyError, ValueError, IndexError) as e:
|
994 |
-
logging.error(
|
995 |
-
f"解析非流式响应 JSON 失败: {e}, "
|
996 |
-
f"完整内容: {response_json}"
|
997 |
-
)
|
998 |
-
prompt_tokens = 0
|
999 |
-
completion_tokens = 0
|
1000 |
-
response_content = ""
|
1001 |
-
|
1002 |
-
user_content = ""
|
1003 |
-
messages = data.get("messages", [])
|
1004 |
-
for message in messages:
|
1005 |
-
if message["role"] == "user":
|
1006 |
-
if isinstance(message["content"], str):
|
1007 |
-
user_content += message["content"] + " "
|
1008 |
-
elif isinstance(message["content"], list):
|
1009 |
-
for item in message["content"]:
|
1010 |
-
if (
|
1011 |
-
isinstance(item, dict) and
|
1012 |
-
item.get("type") == "text"
|
1013 |
-
):
|
1014 |
-
user_content += (
|
1015 |
-
item.get("text", "") +
|
1016 |
-
" "
|
1017 |
-
)
|
1018 |
-
|
1019 |
-
user_content = user_content.strip()
|
1020 |
-
|
1021 |
-
user_content_replaced = user_content.replace(
|
1022 |
-
'\n', '\\n'
|
1023 |
-
).replace('\r', '\\n')
|
1024 |
-
response_content_replaced = response_content.replace(
|
1025 |
-
'\n', '\\n'
|
1026 |
-
).replace('\r', '\\n')
|
1027 |
-
|
1028 |
-
logging.info(
|
1029 |
-
f"使用的key: {api_key}, "
|
1030 |
-
f"提示token: {prompt_tokens}, "
|
1031 |
-
f"输出token: {completion_tokens}, "
|
1032 |
-
f"首字用时: 0, "
|
1033 |
-
f"总共用时: {total_time:.4f}秒, "
|
1034 |
-
f"使用的模型: {model_name}, "
|
1035 |
-
f"用户的内容: {user_content_replaced}, "
|
1036 |
-
f"输出的内容: {response_content_replaced}"
|
1037 |
-
)
|
1038 |
-
with data_lock:
|
1039 |
-
request_timestamps.append(time.time())
|
1040 |
-
if "prompt_tokens" in response_json["usage"] and "completion_tokens" in response_json["usage"]:
|
1041 |
-
token_counts.append(response_json["usage"]["prompt_tokens"] + response_json["usage"]["completion_tokens"])
|
1042 |
-
else:
|
1043 |
-
token_counts.append(0)
|
1044 |
-
|
1045 |
-
return jsonify(response_json)
|
1046 |
-
|
1047 |
-
except requests.exceptions.RequestException as e:
|
1048 |
-
logging.error(f"请求转发异常: {e}")
|
1049 |
-
return jsonify({"error": str(e)}), 500
|
1050 |
-
|
1051 |
-
@app.route('/handsome/v1/models', methods=['GET'])
|
1052 |
-
def list_models():
|
1053 |
-
if not check_authorization(request):
|
1054 |
-
return jsonify({"error": "Unauthorized"}), 401
|
1055 |
-
|
1056 |
-
detailed_models = []
|
1057 |
-
|
1058 |
-
for model in text_models:
|
1059 |
-
detailed_models.append({
|
1060 |
-
"id": model,
|
1061 |
-
"object": "model",
|
1062 |
-
"created": 1678888888,
|
1063 |
-
"owned_by": "openai",
|
1064 |
-
"permission": [
|
1065 |
-
{
|
1066 |
-
"id": f"modelperm-{uuid.uuid4().hex}",
|
1067 |
-
"object": "model_permission",
|
1068 |
-
"created": 1678888888,
|
1069 |
-
"allow_create_engine": False,
|
1070 |
-
"allow_sampling": True,
|
1071 |
-
"allow_logprobs": True,
|
1072 |
-
"allow_search_indices": False,
|
1073 |
-
"allow_view": True,
|
1074 |
-
"allow_fine_tuning": False,
|
1075 |
-
"organization": "*",
|
1076 |
-
"group": None,
|
1077 |
-
"is_blocking": False
|
1078 |
-
}
|
1079 |
-
],
|
1080 |
-
"root": model,
|
1081 |
-
"parent": None
|
1082 |
-
})
|
1083 |
-
|
1084 |
-
for model in embedding_models:
|
1085 |
-
detailed_models.append({
|
1086 |
-
"id": model,
|
1087 |
-
"object": "model",
|
1088 |
-
"created": 1678888888,
|
1089 |
-
"owned_by": "openai",
|
1090 |
-
"permission": [
|
1091 |
-
{
|
1092 |
-
"id": f"modelperm-{uuid.uuid4().hex}",
|
1093 |
-
"object": "model_permission",
|
1094 |
-
"created": 1678888888,
|
1095 |
-
"allow_create_engine": False,
|
1096 |
-
"allow_sampling": True,
|
1097 |
-
"allow_logprobs": True,
|
1098 |
-
"allow_search_indices": False,
|
1099 |
-
"allow_view": True,
|
1100 |
-
"allow_fine_tuning": False,
|
1101 |
-
"organization": "*",
|
1102 |
-
"group": None,
|
1103 |
-
"is_blocking": False
|
1104 |
-
}
|
1105 |
-
],
|
1106 |
-
"root": model,
|
1107 |
-
"parent": None
|
1108 |
-
})
|
1109 |
-
|
1110 |
-
for model in image_models:
|
1111 |
-
detailed_models.append({
|
1112 |
-
"id": model,
|
1113 |
-
"object": "model",
|
1114 |
-
"created": 1678888888,
|
1115 |
-
"owned_by": "openai",
|
1116 |
-
"permission": [
|
1117 |
-
{
|
1118 |
-
"id": f"modelperm-{uuid.uuid4().hex}",
|
1119 |
-
"object": "model_permission",
|
1120 |
-
"created": 1678888888,
|
1121 |
-
"allow_create_engine": False,
|
1122 |
-
"allow_sampling": True,
|
1123 |
-
"allow_logprobs": True,
|
1124 |
-
"allow_search_indices": False,
|
1125 |
-
"allow_view": True,
|
1126 |
-
"allow_fine_tuning": False,
|
1127 |
-
"organization": "*",
|
1128 |
-
"group": None,
|
1129 |
-
"is_blocking": False
|
1130 |
-
}
|
1131 |
-
],
|
1132 |
-
"root": model,
|
1133 |
-
"parent": None
|
1134 |
-
})
|
1135 |
-
|
1136 |
-
return jsonify({
|
1137 |
-
"success": True,
|
1138 |
-
"data": detailed_models
|
1139 |
-
})
|
1140 |
-
|
1141 |
-
def get_billing_info():
|
1142 |
-
keys = valid_keys_global + unverified_keys_global
|
1143 |
-
total_balance = 0
|
1144 |
-
|
1145 |
-
with concurrent.futures.ThreadPoolExecutor(
|
1146 |
-
max_workers=20
|
1147 |
-
) as executor:
|
1148 |
-
futures = [
|
1149 |
-
executor.submit(get_credit_summary, key) for key in keys
|
1150 |
-
]
|
1151 |
-
|
1152 |
-
for future in concurrent.futures.as_completed(futures):
|
1153 |
-
try:
|
1154 |
-
credit_summary = future.result()
|
1155 |
-
if credit_summary:
|
1156 |
-
total_balance += credit_summary.get(
|
1157 |
-
"total_balance",
|
1158 |
-
0
|
1159 |
-
)
|
1160 |
-
except Exception as exc:
|
1161 |
-
logging.error(f"获取额度信息生成异常: {exc}")
|
1162 |
-
|
1163 |
-
return total_balance
|
1164 |
-
|
1165 |
-
@app.route('/handsome/v1/dashboard/billing/usage', methods=['GET'])
|
1166 |
-
def billing_usage():
|
1167 |
-
if not check_authorization(request):
|
1168 |
-
return jsonify({"error": "Unauthorized"}), 401
|
1169 |
-
|
1170 |
-
end_date = datetime.now()
|
1171 |
-
start_date = end_date - timedelta(days=30)
|
1172 |
-
|
1173 |
-
daily_usage = []
|
1174 |
-
current_date = start_date
|
1175 |
-
while current_date <= end_date:
|
1176 |
-
daily_usage.append({
|
1177 |
-
"timestamp": int(current_date.timestamp()),
|
1178 |
-
"daily_usage": 0
|
1179 |
-
})
|
1180 |
-
current_date += timedelta(days=1)
|
1181 |
-
|
1182 |
-
return jsonify({
|
1183 |
-
"object": "list",
|
1184 |
-
"data": daily_usage,
|
1185 |
-
"total_usage": 0
|
1186 |
-
})
|
1187 |
-
|
1188 |
-
@app.route('/handsome/v1/dashboard/billing/subscription', methods=['GET'])
|
1189 |
-
def billing_subscription():
|
1190 |
-
if not check_authorization(request):
|
1191 |
-
return jsonify({"error": "Unauthorized"}), 401
|
1192 |
-
|
1193 |
-
total_balance = get_billing_info()
|
1194 |
-
|
1195 |
-
return jsonify({
|
1196 |
-
"object": "billing_subscription",
|
1197 |
-
"has_payment_method": False,
|
1198 |
-
"canceled": False,
|
1199 |
-
"canceled_at": None,
|
1200 |
-
"delinquent": None,
|
1201 |
-
"access_until": int(datetime(9999, 12, 31).timestamp()),
|
1202 |
-
"soft_limit": 0,
|
1203 |
-
"hard_limit": total_balance,
|
1204 |
-
"system_hard_limit": total_balance,
|
1205 |
-
"soft_limit_usd": 0,
|
1206 |
-
"hard_limit_usd": total_balance,
|
1207 |
-
"system_hard_limit_usd": total_balance,
|
1208 |
-
"plan": {
|
1209 |
-
"name": "SiliconFlow API",
|
1210 |
-
"id": "siliconflow-api"
|
1211 |
-
},
|
1212 |
-
"account_name": "SiliconFlow User",
|
1213 |
-
"po_number": None,
|
1214 |
-
"billing_email": None,
|
1215 |
-
"tax_ids": [],
|
1216 |
-
"billing_address": None,
|
1217 |
-
"business_address": None
|
1218 |
-
})
|
1219 |
-
|
1220 |
-
@app.route('/handsome/v1/embeddings', methods=['POST'])
|
1221 |
-
def handsome_embeddings():
|
1222 |
-
if not check_authorization(request):
|
1223 |
-
return jsonify({"error": "Unauthorized"}), 401
|
1224 |
-
|
1225 |
-
data = request.get_json()
|
1226 |
-
if not data or 'model' not in data:
|
1227 |
-
return jsonify({"error": "Invalid request data"}), 400
|
1228 |
-
|
1229 |
-
model_name = data['model']
|
1230 |
-
request_type = determine_request_type(
|
1231 |
-
model_name,
|
1232 |
-
embedding_models,
|
1233 |
-
free_embedding_models
|
1234 |
-
)
|
1235 |
-
api_key = select_key(request_type, model_name)
|
1236 |
-
|
1237 |
-
if not api_key:
|
1238 |
-
return jsonify(
|
1239 |
-
{
|
1240 |
-
"error": (
|
1241 |
-
"No available API key for this "
|
1242 |
-
"request type or all keys have "
|
1243 |
-
"reached their limits"
|
1244 |
-
)
|
1245 |
-
}
|
1246 |
-
), 429
|
1247 |
-
|
1248 |
-
headers = {
|
1249 |
-
"Authorization": f"Bearer {api_key}",
|
1250 |
-
"Content-Type": "application/json"
|
1251 |
-
}
|
1252 |
-
|
1253 |
-
try:
|
1254 |
-
start_time = time.time()
|
1255 |
-
response = requests.post(
|
1256 |
-
EMBEDDINGS_ENDPOINT,
|
1257 |
-
headers=headers,
|
1258 |
-
json=data,
|
1259 |
-
timeout=120
|
1260 |
-
)
|
1261 |
-
|
1262 |
-
if response.status_code == 429:
|
1263 |
-
return jsonify(response.json()), 429
|
1264 |
-
|
1265 |
-
response.raise_for_status()
|
1266 |
-
end_time = time.time()
|
1267 |
-
response_json = response.json()
|
1268 |
-
total_time = end_time - start_time
|
1269 |
|
1270 |
try:
|
1271 |
prompt_tokens = response_json["usage"]["prompt_tokens"]
|
@@ -1302,10 +803,6 @@ def handsome_embeddings():
|
|
1302 |
except requests.exceptions.RequestException as e:
|
1303 |
return jsonify({"error": str(e)}), 500
|
1304 |
|
1305 |
-
import base64
|
1306 |
-
import io
|
1307 |
-
from PIL import Image
|
1308 |
-
|
1309 |
@app.route('/handsome/v1/images/generations', methods=['POST'])
|
1310 |
def handsome_images_generations():
|
1311 |
if not check_authorization(request):
|
@@ -1341,116 +838,610 @@ def handsome_images_generations():
|
|
1341 |
"Content-Type": "application/json"
|
1342 |
}
|
1343 |
|
1344 |
-
response_data = {}
|
1345 |
-
|
1346 |
-
if "stable-diffusion" in model_name:
|
1347 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
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|
|
|
|
|
|
|
|
|
1348 |
siliconflow_data = {
|
1349 |
"model": model_name,
|
1350 |
-
"prompt":
|
1351 |
-
"image_size":
|
1352 |
-
"batch_size":
|
1353 |
-
"num_inference_steps":
|
1354 |
-
"guidance_scale":
|
1355 |
-
"negative_prompt": data.get("negative_prompt"),
|
1356 |
-
"seed": data.get("seed"),
|
1357 |
"prompt_enhancement": False,
|
1358 |
}
|
1359 |
|
1360 |
-
|
1361 |
-
|
1362 |
-
|
1363 |
-
|
1364 |
-
|
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|
|
|
|
1365 |
|
1366 |
-
|
1367 |
-
|
1368 |
-
|
1369 |
-
|
1370 |
-
|
1371 |
-
if siliconflow_data["guidance_scale"] < 0:
|
1372 |
-
siliconflow_data["guidance_scale"] = 0
|
1373 |
-
if siliconflow_data["guidance_scale"] > 100:
|
1374 |
-
siliconflow_data["guidance_scale"] = 100
|
1375 |
-
|
1376 |
-
if siliconflow_data["image_size"] not in ["1024x1024", "512x1024", "768x512", "768x1024", "1024x576", "576x1024"]:
|
1377 |
-
siliconflow_data["image_size"] = "1024x1024"
|
1378 |
-
|
1379 |
try:
|
1380 |
start_time = time.time()
|
1381 |
response = requests.post(
|
1382 |
-
|
1383 |
headers=headers,
|
1384 |
-
json=
|
1385 |
-
|
|
|
1386 |
)
|
1387 |
-
|
1388 |
if response.status_code == 429:
|
1389 |
return jsonify(response.json()), 429
|
1390 |
|
1391 |
-
|
1392 |
-
|
1393 |
-
|
1394 |
-
|
1395 |
-
|
1396 |
-
|
1397 |
-
|
1398 |
-
|
1399 |
-
|
1400 |
-
|
1401 |
-
image_url = item["url"]
|
1402 |
-
print(f"image_url: {image_url}") # 打印 URL
|
1403 |
-
if data.get("response_format") == "b64_json":
|
1404 |
-
try:
|
1405 |
-
image_data = requests.get(image_url, stream=True).raw
|
1406 |
-
image = Image.open(image_data)
|
1407 |
-
buffered = io.BytesIO()
|
1408 |
-
image.save(buffered, format="PNG")
|
1409 |
-
img_str = base64.b64encode(buffered.getvalue()).decode()
|
1410 |
-
openai_images.append({"b64_json": img_str})
|
1411 |
-
except Exception as e:
|
1412 |
-
logging.error(f"图片转base64失败: {e}")
|
1413 |
-
openai_images.append({"url": image_url})
|
1414 |
-
else:
|
1415 |
-
openai_images.append({"url": image_url})
|
1416 |
-
else:
|
1417 |
-
logging.error(f"无效的图片数据: {item}")
|
1418 |
-
openai_images.append({"url": item})
|
1419 |
|
|
|
|
|
|
|
|
|
|
|
|
|
1420 |
|
1421 |
-
|
1422 |
-
|
1423 |
-
"
|
1424 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
1425 |
|
1426 |
-
|
1427 |
-
|
1428 |
-
|
1429 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
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|
|
|
|
|
1430 |
)
|
1431 |
-
|
1432 |
-
|
1433 |
-
|
1434 |
-
|
|
|
|
|
|
|
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|
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|
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|
|
|
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|
|
|
|
|
|
1435 |
|
|
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|
|
|
|
|
|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
1436 |
|
1437 |
-
|
1438 |
-
f"使用的key: {api_key}, "
|
1439 |
-
f"总共用时: {total_time:.4f}秒, "
|
1440 |
-
f"使用的模型: {model_name}"
|
1441 |
-
)
|
1442 |
|
1443 |
-
|
1444 |
-
|
1445 |
-
|
|
|
|
|
|
|
1446 |
|
1447 |
-
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1448 |
|
1449 |
except requests.exceptions.RequestException as e:
|
1450 |
logging.error(f"请求转发异常: {e}")
|
1451 |
-
return jsonify({"error": str(e)}), 500
|
1452 |
-
else:
|
1453 |
-
return jsonify({"error": "Unsupported model"}), 400
|
1454 |
|
1455 |
if __name__ == '__main__':
|
1456 |
import json
|
|
|
7 |
import uuid
|
8 |
import concurrent.futures
|
9 |
import threading
|
10 |
+
import base64
|
11 |
+
import io
|
12 |
+
from PIL import Image
|
13 |
from datetime import datetime, timedelta
|
14 |
from apscheduler.schedulers.background import BackgroundScheduler
|
15 |
from flask import Flask, request, jsonify, Response, stream_with_context
|
|
|
548 |
)
|
549 |
|
550 |
return jsonify(results)
|
551 |
+
|
552 |
+
@app.route('/handsome/v1/models', methods=['GET'])
|
553 |
+
def list_models():
|
554 |
+
if not check_authorization(request):
|
555 |
+
return jsonify({"error": "Unauthorized"}), 401
|
556 |
|
557 |
+
detailed_models = []
|
558 |
+
|
559 |
+
for model in text_models:
|
560 |
+
detailed_models.append({
|
561 |
+
"id": model,
|
562 |
+
"object": "model",
|
563 |
+
"created": 1678888888,
|
564 |
+
"owned_by": "openai",
|
565 |
+
"permission": [
|
566 |
+
{
|
567 |
+
"id": f"modelperm-{uuid.uuid4().hex}",
|
568 |
+
"object": "model_permission",
|
569 |
+
"created": 1678888888,
|
570 |
+
"allow_create_engine": False,
|
571 |
+
"allow_sampling": True,
|
572 |
+
"allow_logprobs": True,
|
573 |
+
"allow_search_indices": False,
|
574 |
+
"allow_view": True,
|
575 |
+
"allow_fine_tuning": False,
|
576 |
+
"organization": "*",
|
577 |
+
"group": None,
|
578 |
+
"is_blocking": False
|
579 |
+
}
|
580 |
+
],
|
581 |
+
"root": model,
|
582 |
+
"parent": None
|
583 |
+
})
|
584 |
+
|
585 |
+
for model in embedding_models:
|
586 |
+
detailed_models.append({
|
587 |
+
"id": model,
|
588 |
+
"object": "model",
|
589 |
+
"created": 1678888888,
|
590 |
+
"owned_by": "openai",
|
591 |
+
"permission": [
|
592 |
+
{
|
593 |
+
"id": f"modelperm-{uuid.uuid4().hex}",
|
594 |
+
"object": "model_permission",
|
595 |
+
"created": 1678888888,
|
596 |
+
"allow_create_engine": False,
|
597 |
+
"allow_sampling": True,
|
598 |
+
"allow_logprobs": True,
|
599 |
+
"allow_search_indices": False,
|
600 |
+
"allow_view": True,
|
601 |
+
"allow_fine_tuning": False,
|
602 |
+
"organization": "*",
|
603 |
+
"group": None,
|
604 |
+
"is_blocking": False
|
605 |
+
}
|
606 |
+
],
|
607 |
+
"root": model,
|
608 |
+
"parent": None
|
609 |
+
})
|
610 |
+
|
611 |
+
for model in image_models:
|
612 |
+
detailed_models.append({
|
613 |
+
"id": model,
|
614 |
+
"object": "model",
|
615 |
+
"created": 1678888888,
|
616 |
+
"owned_by": "openai",
|
617 |
+
"permission": [
|
618 |
+
{
|
619 |
+
"id": f"modelperm-{uuid.uuid4().hex}",
|
620 |
+
"object": "model_permission",
|
621 |
+
"created": 1678888888,
|
622 |
+
"allow_create_engine": False,
|
623 |
+
"allow_sampling": True,
|
624 |
+
"allow_logprobs": True,
|
625 |
+
"allow_search_indices": False,
|
626 |
+
"allow_view": True,
|
627 |
+
"allow_fine_tuning": False,
|
628 |
+
"organization": "*",
|
629 |
+
"group": None,
|
630 |
+
"is_blocking": False
|
631 |
+
}
|
632 |
+
],
|
633 |
+
"root": model,
|
634 |
+
"parent": None
|
635 |
+
})
|
636 |
+
|
637 |
+
return jsonify({
|
638 |
+
"success": True,
|
639 |
+
"data": detailed_models
|
640 |
+
})
|
641 |
+
|
642 |
+
def get_billing_info():
|
643 |
+
keys = valid_keys_global + unverified_keys_global
|
644 |
+
total_balance = 0
|
645 |
+
|
646 |
+
with concurrent.futures.ThreadPoolExecutor(
|
647 |
+
max_workers=20
|
648 |
+
) as executor:
|
649 |
+
futures = [
|
650 |
+
executor.submit(get_credit_summary, key) for key in keys
|
651 |
+
]
|
652 |
+
|
653 |
+
for future in concurrent.futures.as_completed(futures):
|
654 |
+
try:
|
655 |
+
credit_summary = future.result()
|
656 |
+
if credit_summary:
|
657 |
+
total_balance += credit_summary.get(
|
658 |
+
"total_balance",
|
659 |
+
0
|
660 |
+
)
|
661 |
+
except Exception as exc:
|
662 |
+
logging.error(f"获取额度信息生成异常: {exc}")
|
663 |
+
|
664 |
+
return total_balance
|
665 |
+
|
666 |
+
@app.route('/handsome/v1/dashboard/billing/usage', methods=['GET'])
|
667 |
+
def billing_usage():
|
668 |
+
if not check_authorization(request):
|
669 |
+
return jsonify({"error": "Unauthorized"}), 401
|
670 |
+
|
671 |
+
end_date = datetime.now()
|
672 |
+
start_date = end_date - timedelta(days=30)
|
673 |
+
|
674 |
+
daily_usage = []
|
675 |
+
current_date = start_date
|
676 |
+
while current_date <= end_date:
|
677 |
+
daily_usage.append({
|
678 |
+
"timestamp": int(current_date.timestamp()),
|
679 |
+
"daily_usage": 0
|
680 |
+
})
|
681 |
+
current_date += timedelta(days=1)
|
682 |
+
|
683 |
+
return jsonify({
|
684 |
+
"object": "list",
|
685 |
+
"data": daily_usage,
|
686 |
+
"total_usage": 0
|
687 |
+
})
|
688 |
+
|
689 |
+
@app.route('/handsome/v1/dashboard/billing/subscription', methods=['GET'])
|
690 |
+
def billing_subscription():
|
691 |
+
if not check_authorization(request):
|
692 |
+
return jsonify({"error": "Unauthorized"}), 401
|
693 |
+
|
694 |
+
total_balance = get_billing_info()
|
695 |
+
|
696 |
+
return jsonify({
|
697 |
+
"object": "billing_subscription",
|
698 |
+
"has_payment_method": False,
|
699 |
+
"canceled": False,
|
700 |
+
"canceled_at": None,
|
701 |
+
"delinquent": None,
|
702 |
+
"access_until": int(datetime(9999, 12, 31).timestamp()),
|
703 |
+
"soft_limit": 0,
|
704 |
+
"hard_limit": total_balance,
|
705 |
+
"system_hard_limit": total_balance,
|
706 |
+
"soft_limit_usd": 0,
|
707 |
+
"hard_limit_usd": total_balance,
|
708 |
+
"system_hard_limit_usd": total_balance,
|
709 |
+
"plan": {
|
710 |
+
"name": "SiliconFlow API",
|
711 |
+
"id": "siliconflow-api"
|
712 |
+
},
|
713 |
+
"account_name": "SiliconFlow User",
|
714 |
+
"po_number": None,
|
715 |
+
"billing_email": None,
|
716 |
+
"tax_ids": [],
|
717 |
+
"billing_address": None,
|
718 |
+
"business_address": None
|
719 |
+
})
|
720 |
+
|
721 |
+
@app.route('/handsome/v1/embeddings', methods=['POST'])
|
722 |
+
def handsome_embeddings():
|
723 |
if not check_authorization(request):
|
724 |
return jsonify({"error": "Unauthorized"}), 401
|
725 |
|
|
|
728 |
return jsonify({"error": "Invalid request data"}), 400
|
729 |
|
730 |
model_name = data['model']
|
|
|
731 |
request_type = determine_request_type(
|
732 |
model_name,
|
733 |
+
embedding_models,
|
734 |
+
free_embedding_models
|
735 |
)
|
|
|
736 |
api_key = select_key(request_type, model_name)
|
737 |
|
738 |
if not api_key:
|
|
|
750 |
"Authorization": f"Bearer {api_key}",
|
751 |
"Content-Type": "application/json"
|
752 |
}
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
753 |
|
754 |
+
try:
|
755 |
+
start_time = time.time()
|
756 |
+
response = requests.post(
|
757 |
+
EMBEDDINGS_ENDPOINT,
|
758 |
+
headers=headers,
|
759 |
+
json=data,
|
760 |
+
timeout=120
|
761 |
+
)
|
|
|
|
|
|
|
|
|
|
|
762 |
|
763 |
+
if response.status_code == 429:
|
764 |
+
return jsonify(response.json()), 429
|
|
|
|
|
|
|
765 |
|
766 |
+
response.raise_for_status()
|
767 |
+
end_time = time.time()
|
768 |
+
response_json = response.json()
|
769 |
+
total_time = end_time - start_time
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
770 |
|
771 |
try:
|
772 |
prompt_tokens = response_json["usage"]["prompt_tokens"]
|
|
|
803 |
except requests.exceptions.RequestException as e:
|
804 |
return jsonify({"error": str(e)}), 500
|
805 |
|
|
|
|
|
|
|
|
|
806 |
@app.route('/handsome/v1/images/generations', methods=['POST'])
|
807 |
def handsome_images_generations():
|
808 |
if not check_authorization(request):
|
|
|
838 |
"Content-Type": "application/json"
|
839 |
}
|
840 |
|
841 |
+
response_data = {}
|
842 |
+
|
843 |
+
if "stable-diffusion" in model_name:
|
844 |
+
siliconflow_data = {
|
845 |
+
"model": model_name,
|
846 |
+
"prompt": data.get("prompt"),
|
847 |
+
"image_size": data.get("size", "1024x1024"),
|
848 |
+
"batch_size": data.get("n", 1),
|
849 |
+
"num_inference_steps": data.get("steps", 20),
|
850 |
+
"guidance_scale": data.get("guidance_scale", 7.5),
|
851 |
+
"negative_prompt": data.get("negative_prompt"),
|
852 |
+
"seed": data.get("seed"),
|
853 |
+
"prompt_enhancement": False,
|
854 |
+
}
|
855 |
+
|
856 |
+
# Parameter validation and adjustments
|
857 |
+
if siliconflow_data["batch_size"] < 1:
|
858 |
+
siliconflow_data["batch_size"] = 1
|
859 |
+
if siliconflow_data["batch_size"] > 4:
|
860 |
+
siliconflow_data["batch_size"] = 4
|
861 |
+
|
862 |
+
if siliconflow_data["num_inference_steps"] < 1:
|
863 |
+
siliconflow_data["num_inference_steps"] = 1
|
864 |
+
if siliconflow_data["num_inference_steps"] > 50:
|
865 |
+
siliconflow_data["num_inference_steps"] = 50
|
866 |
+
|
867 |
+
if siliconflow_data["guidance_scale"] < 0:
|
868 |
+
siliconflow_data["guidance_scale"] = 0
|
869 |
+
if siliconflow_data["guidance_scale"] > 100:
|
870 |
+
siliconflow_data["guidance_scale"] = 100
|
871 |
+
|
872 |
+
if siliconflow_data["image_size"] not in ["1024x1024", "512x1024", "768x512", "768x1024", "1024x576", "576x1024"]:
|
873 |
+
siliconflow_data["image_size"] = "1024x1024"
|
874 |
+
|
875 |
+
try:
|
876 |
+
start_time = time.time()
|
877 |
+
response = requests.post(
|
878 |
+
"https://api.siliconflow.cn/v1/images/generations",
|
879 |
+
headers=headers,
|
880 |
+
json=siliconflow_data,
|
881 |
+
timeout=120
|
882 |
+
)
|
883 |
+
|
884 |
+
if response.status_code == 429:
|
885 |
+
return jsonify(response.json()), 429
|
886 |
+
|
887 |
+
response.raise_for_status()
|
888 |
+
end_time = time.time()
|
889 |
+
response_json = response.json()
|
890 |
+
total_time = end_time - start_time
|
891 |
+
|
892 |
+
try:
|
893 |
+
images = response_json.get("images", [])
|
894 |
+
openai_images = []
|
895 |
+
for item in images:
|
896 |
+
if isinstance(item, dict) and "url" in item:
|
897 |
+
image_url = item["url"]
|
898 |
+
print(f"image_url: {image_url}")
|
899 |
+
if data.get("response_format") == "b64_json":
|
900 |
+
try:
|
901 |
+
image_data = requests.get(image_url, stream=True).raw
|
902 |
+
image = Image.open(image_data)
|
903 |
+
buffered = io.BytesIO()
|
904 |
+
image.save(buffered, format="PNG")
|
905 |
+
img_str = base64.b64encode(buffered.getvalue()).decode()
|
906 |
+
openai_images.append({"b64_json": img_str})
|
907 |
+
except Exception as e:
|
908 |
+
logging.error(f"图片转base64失败: {e}")
|
909 |
+
openai_images.append({"url": image_url})
|
910 |
+
else:
|
911 |
+
openai_images.append({"url": image_url})
|
912 |
+
else:
|
913 |
+
logging.error(f"无效的图片数据: {item}")
|
914 |
+
openai_images.append({"url": item})
|
915 |
+
|
916 |
+
|
917 |
+
response_data = {
|
918 |
+
"created": int(time.time()),
|
919 |
+
"data": openai_images
|
920 |
+
}
|
921 |
+
|
922 |
+
except (KeyError, ValueError, IndexError) as e:
|
923 |
+
logging.error(
|
924 |
+
f"解析响应 JSON 失败: {e}, "
|
925 |
+
f"完整内容: {response_json}"
|
926 |
+
)
|
927 |
+
response_data = {
|
928 |
+
"created": int(time.time()),
|
929 |
+
"data": []
|
930 |
+
}
|
931 |
+
|
932 |
+
|
933 |
+
logging.info(
|
934 |
+
f"使用的key: {api_key}, "
|
935 |
+
f"总共用时: {total_time:.4f}秒, "
|
936 |
+
f"使用的模型: {model_name}"
|
937 |
+
)
|
938 |
+
|
939 |
+
with data_lock:
|
940 |
+
request_timestamps.append(time.time())
|
941 |
+
token_counts.append(0)
|
942 |
+
|
943 |
+
return jsonify(response_data)
|
944 |
+
|
945 |
+
except requests.exceptions.RequestException as e:
|
946 |
+
logging.error(f"请求转发异常: {e}")
|
947 |
+
return jsonify({"error": str(e)}), 500
|
948 |
+
else:
|
949 |
+
return jsonify({"error": "Unsupported model"}), 400
|
950 |
+
|
951 |
+
@app.route('/handsome/v1/chat/completions', methods=['POST'])
|
952 |
+
def handsome_chat_completions():
|
953 |
+
if not check_authorization(request):
|
954 |
+
return jsonify({"error": "Unauthorized"}), 401
|
955 |
+
|
956 |
+
data = request.get_json()
|
957 |
+
if not data or 'model' not in data:
|
958 |
+
return jsonify({"error": "Invalid request data"}), 400
|
959 |
+
|
960 |
+
model_name = data['model']
|
961 |
+
|
962 |
+
request_type = determine_request_type(
|
963 |
+
model_name,
|
964 |
+
text_models + image_models,
|
965 |
+
free_text_models + free_image_models
|
966 |
+
)
|
967 |
+
|
968 |
+
api_key = select_key(request_type, model_name)
|
969 |
+
|
970 |
+
if not api_key:
|
971 |
+
return jsonify(
|
972 |
+
{
|
973 |
+
"error": (
|
974 |
+
"No available API key for this "
|
975 |
+
"request type or all keys have "
|
976 |
+
"reached their limits"
|
977 |
+
)
|
978 |
+
}
|
979 |
+
), 429
|
980 |
+
|
981 |
+
headers = {
|
982 |
+
"Authorization": f"Bearer {api_key}",
|
983 |
+
"Content-Type": "application/json"
|
984 |
+
}
|
985 |
+
|
986 |
+
if model_name in image_models:
|
987 |
+
# Handle image generation
|
988 |
+
user_content = ""
|
989 |
+
messages = data.get("messages", [])
|
990 |
+
for message in messages:
|
991 |
+
if message["role"] == "user":
|
992 |
+
if isinstance(message["content"], str):
|
993 |
+
user_content += message["content"] + " "
|
994 |
+
elif isinstance(message["content"], list):
|
995 |
+
for item in message["content"]:
|
996 |
+
if (
|
997 |
+
isinstance(item, dict) and
|
998 |
+
item.get("type") == "text"
|
999 |
+
):
|
1000 |
+
user_content += (
|
1001 |
+
item.get("text", "") +
|
1002 |
+
" "
|
1003 |
+
)
|
1004 |
+
user_content = user_content.strip()
|
1005 |
+
|
1006 |
siliconflow_data = {
|
1007 |
"model": model_name,
|
1008 |
+
"prompt": user_content,
|
1009 |
+
"image_size": "1024x1024",
|
1010 |
+
"batch_size": 1,
|
1011 |
+
"num_inference_steps": 20,
|
1012 |
+
"guidance_scale": 7.5,
|
|
|
|
|
1013 |
"prompt_enhancement": False,
|
1014 |
}
|
1015 |
|
1016 |
+
if data.get("size"):
|
1017 |
+
siliconflow_data["image_size"] = data.get("size")
|
1018 |
+
if data.get("n"):
|
1019 |
+
siliconflow_data["batch_size"] = data.get("n")
|
1020 |
+
if data.get("steps"):
|
1021 |
+
siliconflow_data["num_inference_steps"] = data.get("steps")
|
1022 |
+
if data.get("guidance_scale"):
|
1023 |
+
siliconflow_data["guidance_scale"] = data.get("guidance_scale")
|
1024 |
+
if data.get("negative_prompt"):
|
1025 |
+
siliconflow_data["negative_prompt"] = data.get("negative_prompt")
|
1026 |
+
if data.get("seed"):
|
1027 |
+
siliconflow_data["seed"] = data.get("seed")
|
1028 |
+
|
1029 |
+
if siliconflow_data["batch_size"] < 1:
|
1030 |
+
siliconflow_data["batch_size"] = 1
|
1031 |
+
if siliconflow_data["batch_size"] > 4:
|
1032 |
+
siliconflow_data["batch_size"] = 4
|
1033 |
+
|
1034 |
+
if siliconflow_data["num_inference_steps"] < 1:
|
1035 |
+
siliconflow_data["num_inference_steps"] = 1
|
1036 |
+
if siliconflow_data["num_inference_steps"] > 50:
|
1037 |
+
siliconflow_data["num_inference_steps"] = 50
|
1038 |
+
|
1039 |
+
if siliconflow_data["guidance_scale"] < 0:
|
1040 |
+
siliconflow_data["guidance_scale"] = 0
|
1041 |
+
if siliconflow_data["guidance_scale"] > 100:
|
1042 |
+
siliconflow_data["guidance_scale"] = 100
|
1043 |
+
|
1044 |
+
if siliconflow_data["image_size"] not in ["1024x1024", "512x1024", "768x512", "768x1024", "1024x576", "576x1024"]:
|
1045 |
+
siliconflow_data["image_size"] = "1024x1024"
|
1046 |
+
|
1047 |
+
try:
|
1048 |
+
start_time = time.time()
|
1049 |
+
response = requests.post(
|
1050 |
+
"https://api.siliconflow.cn/v1/images/generations",
|
1051 |
+
headers=headers,
|
1052 |
+
json=siliconflow_data,
|
1053 |
+
timeout=120,
|
1054 |
+
stream=data.get("stream", False)
|
1055 |
+
)
|
1056 |
+
|
1057 |
+
if response.status_code == 429:
|
1058 |
+
return jsonify(response.json()), 429
|
1059 |
+
|
1060 |
+
if data.get("stream", False):
|
1061 |
+
def generate():
|
1062 |
+
first_chunk_time = None
|
1063 |
+
full_response_content = ""
|
1064 |
+
try:
|
1065 |
+
response.raise_for_status()
|
1066 |
+
end_time = time.time()
|
1067 |
+
response_json = response.json()
|
1068 |
+
total_time = end_time - start_time
|
1069 |
+
|
1070 |
+
images = response_json.get("images", [])
|
1071 |
+
|
1072 |
+
image_url = ""
|
1073 |
+
if images and isinstance(images[0], dict) and "url" in images[0]:
|
1074 |
+
image_url = images[0]["url"]
|
1075 |
+
logging.info(f"Extracted image URL: {image_url}")
|
1076 |
+
elif images and isinstance(images[0], str):
|
1077 |
+
image_url = images[0]
|
1078 |
+
logging.info(f"Extracted image URL: {image_url}")
|
1079 |
+
|
1080 |
+
markdown_image_link = f"![image]({image_url})"
|
1081 |
+
if image_url:
|
1082 |
+
chunk_data = {
|
1083 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1084 |
+
"object": "chat.completion.chunk",
|
1085 |
+
"created": int(time.time()),
|
1086 |
+
"model": model_name,
|
1087 |
+
"choices": [
|
1088 |
+
{
|
1089 |
+
"index": 0,
|
1090 |
+
"delta": {
|
1091 |
+
"role": "assistant",
|
1092 |
+
"content": markdown_image_link
|
1093 |
+
},
|
1094 |
+
"finish_reason": None
|
1095 |
+
}
|
1096 |
+
]
|
1097 |
+
}
|
1098 |
+
yield f"data: {json.dumps(chunk_data)}\n\n".encode('utf-8')
|
1099 |
+
full_response_content = markdown_image_link
|
1100 |
+
else:
|
1101 |
+
chunk_data = {
|
1102 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1103 |
+
"object": "chat.completion.chunk",
|
1104 |
+
"created": int(time.time()),
|
1105 |
+
"model": model_name,
|
1106 |
+
"choices": [
|
1107 |
+
{
|
1108 |
+
"index": 0,
|
1109 |
+
"delta": {
|
1110 |
+
"role": "assistant",
|
1111 |
+
"content": "Failed to generate image"
|
1112 |
+
},
|
1113 |
+
"finish_reason": None
|
1114 |
+
}
|
1115 |
+
]
|
1116 |
+
}
|
1117 |
+
yield f"data: {json.dumps(chunk_data)}\n\n".encode('utf-8')
|
1118 |
+
full_response_content = "Failed to generate image"
|
1119 |
+
|
1120 |
+
end_chunk_data = {
|
1121 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1122 |
+
"object": "chat.completion.chunk",
|
1123 |
+
"created": int(time.time()),
|
1124 |
+
"model": model_name,
|
1125 |
+
"choices": [
|
1126 |
+
{
|
1127 |
+
"index": 0,
|
1128 |
+
"delta": {},
|
1129 |
+
"finish_reason": "stop"
|
1130 |
+
}
|
1131 |
+
]
|
1132 |
+
}
|
1133 |
+
yield f"data: {json.dumps(end_chunk_data)}\n\n".encode('utf-8')
|
1134 |
+
|
1135 |
+
with data_lock:
|
1136 |
+
request_timestamps.append(time.time())
|
1137 |
+
token_counts.append(0)
|
1138 |
+
except requests.exceptions.RequestException as e:
|
1139 |
+
logging.error(f"请求转发异常: {e}")
|
1140 |
+
error_chunk_data = {
|
1141 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1142 |
+
"object": "chat.completion.chunk",
|
1143 |
+
"created": int(time.time()),
|
1144 |
+
"model": model_name,
|
1145 |
+
"choices": [
|
1146 |
+
{
|
1147 |
+
"index": 0,
|
1148 |
+
"delta": {
|
1149 |
+
"role": "assistant",
|
1150 |
+
"content": f"Error: {str(e)}"
|
1151 |
+
},
|
1152 |
+
"finish_reason": None
|
1153 |
+
}
|
1154 |
+
]
|
1155 |
+
}
|
1156 |
+
yield f"data: {json.dumps(error_chunk_data)}\n\n".encode('utf-8')
|
1157 |
+
end_chunk_data = {
|
1158 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1159 |
+
"object": "chat.completion.chunk",
|
1160 |
+
"created": int(time.time()),
|
1161 |
+
"model": model_name,
|
1162 |
+
"choices": [
|
1163 |
+
{
|
1164 |
+
"index": 0,
|
1165 |
+
"delta": {},
|
1166 |
+
"finish_reason": "stop"
|
1167 |
+
}
|
1168 |
+
]
|
1169 |
+
}
|
1170 |
+
yield f"data: {json.dumps(end_chunk_data)}\n\n".encode('utf-8')
|
1171 |
+
|
1172 |
+
logging.info(
|
1173 |
+
f"使用的key: {api_key}, "
|
1174 |
+
f"使用的模型: {model_name}"
|
1175 |
+
)
|
1176 |
+
yield "data: [DONE]\n\n".encode('utf-8')
|
1177 |
+
return Response(stream_with_context(generate()), content_type='text/event-stream')
|
1178 |
+
else:
|
1179 |
+
response.raise_for_status()
|
1180 |
+
end_time = time.time()
|
1181 |
+
response_json = response.json()
|
1182 |
+
total_time = end_time - start_time
|
1183 |
+
|
1184 |
+
try:
|
1185 |
+
images = response_json.get("images", [])
|
1186 |
+
|
1187 |
+
image_url = ""
|
1188 |
+
if images and isinstance(images[0], dict) and "url" in images[0]:
|
1189 |
+
image_url = images[0]["url"]
|
1190 |
+
logging.info(f"Extracted image URL: {image_url}")
|
1191 |
+
elif images and isinstance(images[0], str):
|
1192 |
+
image_url = images[0]
|
1193 |
+
logging.info(f"Extracted image URL: {image_url}")
|
1194 |
+
|
1195 |
+
markdown_image_link = f"![image]({image_url})"
|
1196 |
+
response_data = {
|
1197 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1198 |
+
"object": "chat.completion",
|
1199 |
+
"created": int(time.time()),
|
1200 |
+
"model": model_name,
|
1201 |
+
"choices": [
|
1202 |
+
{
|
1203 |
+
"index": 0,
|
1204 |
+
"message": {
|
1205 |
+
"role": "assistant",
|
1206 |
+
"content": markdown_image_link if image_url else "Failed to generate image", # Directly return the URL in content
|
1207 |
+
},
|
1208 |
+
"finish_reason": "stop",
|
1209 |
+
}
|
1210 |
+
],
|
1211 |
+
}
|
1212 |
+
|
1213 |
+
except (KeyError, ValueError, IndexError) as e:
|
1214 |
+
logging.error(
|
1215 |
+
f"解析响应 JSON 失败: {e}, "
|
1216 |
+
f"完整内容: {response_json}"
|
1217 |
+
)
|
1218 |
+
response_data = {
|
1219 |
+
"id": f"chatcmpl-{uuid.uuid4()}",
|
1220 |
+
"object": "chat.completion",
|
1221 |
+
"created": int(time.time()),
|
1222 |
+
"model": model_name,
|
1223 |
+
"choices": [
|
1224 |
+
{
|
1225 |
+
"index": 0,
|
1226 |
+
"message": {
|
1227 |
+
"role": "assistant",
|
1228 |
+
"content": "Failed to process image data",
|
1229 |
+
},
|
1230 |
+
"finish_reason": "stop",
|
1231 |
+
}
|
1232 |
+
],
|
1233 |
+
}
|
1234 |
+
|
1235 |
+
logging.info(
|
1236 |
+
f"使用的key: {api_key}, "
|
1237 |
+
f"总共用时: {total_time:.4f}秒, "
|
1238 |
+
f"使用的模型: {model_name}"
|
1239 |
+
)
|
1240 |
+
|
1241 |
+
with data_lock:
|
1242 |
+
request_timestamps.append(time.time())
|
1243 |
+
token_counts.append(0)
|
1244 |
|
1245 |
+
return jsonify(response_data)
|
1246 |
+
except requests.exceptions.RequestException as e:
|
1247 |
+
logging.error(f"请求转发异常: {e}")
|
1248 |
+
return jsonify({"error": str(e)}), 500
|
1249 |
+
else:
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1250 |
try:
|
1251 |
start_time = time.time()
|
1252 |
response = requests.post(
|
1253 |
+
TEST_MODEL_ENDPOINT,
|
1254 |
headers=headers,
|
1255 |
+
json=data,
|
1256 |
+
stream=data.get("stream", False),
|
1257 |
+
timeout=60
|
1258 |
)
|
|
|
1259 |
if response.status_code == 429:
|
1260 |
return jsonify(response.json()), 429
|
1261 |
|
1262 |
+
if data.get("stream", False):
|
1263 |
+
def generate():
|
1264 |
+
first_chunk_time = None
|
1265 |
+
full_response_content = ""
|
1266 |
+
for chunk in response.iter_content(chunk_size=1024):
|
1267 |
+
if chunk:
|
1268 |
+
if first_chunk_time is None:
|
1269 |
+
first_chunk_time = time.time()
|
1270 |
+
full_response_content += chunk.decode("utf-8")
|
1271 |
+
yield chunk
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1272 |
|
1273 |
+
end_time = time.time()
|
1274 |
+
first_token_time = (
|
1275 |
+
first_chunk_time - start_time
|
1276 |
+
if first_chunk_time else 0
|
1277 |
+
)
|
1278 |
+
total_time = end_time - start_time
|
1279 |
|
1280 |
+
prompt_tokens = 0
|
1281 |
+
completion_tokens = 0
|
1282 |
+
response_content = ""
|
1283 |
+
for line in full_response_content.splitlines():
|
1284 |
+
if line.startswith("data:"):
|
1285 |
+
line = line[5:].strip()
|
1286 |
+
if line == "[DONE]":
|
1287 |
+
continue
|
1288 |
+
try:
|
1289 |
+
response_json = json.loads(line)
|
1290 |
|
1291 |
+
if (
|
1292 |
+
"usage" in response_json and
|
1293 |
+
"completion_tokens" in response_json["usage"]
|
1294 |
+
):
|
1295 |
+
completion_tokens = response_json[
|
1296 |
+
"usage"
|
1297 |
+
]["completion_tokens"]
|
1298 |
+
|
1299 |
+
if (
|
1300 |
+
"choices" in response_json and
|
1301 |
+
len(response_json["choices"]) > 0 and
|
1302 |
+
"delta" in response_json["choices"][0] and
|
1303 |
+
"content" in response_json[
|
1304 |
+
"choices"
|
1305 |
+
][0]["delta"]
|
1306 |
+
):
|
1307 |
+
response_content += response_json[
|
1308 |
+
"choices"
|
1309 |
+
][0]["delta"]["content"]
|
1310 |
+
|
1311 |
+
if (
|
1312 |
+
"usage" in response_json and
|
1313 |
+
"prompt_tokens" in response_json["usage"]
|
1314 |
+
):
|
1315 |
+
prompt_tokens = response_json[
|
1316 |
+
"usage"
|
1317 |
+
]["prompt_tokens"]
|
1318 |
+
|
1319 |
+
except (
|
1320 |
+
KeyError,
|
1321 |
+
ValueError,
|
1322 |
+
IndexError
|
1323 |
+
) as e:
|
1324 |
+
logging.error(
|
1325 |
+
f"解析流式响应单行 JSON 失败: {e}, "
|
1326 |
+
f"行内容: {line}"
|
1327 |
+
)
|
1328 |
+
|
1329 |
+
user_content = ""
|
1330 |
+
messages = data.get("messages", [])
|
1331 |
+
for message in messages:
|
1332 |
+
if message["role"] == "user":
|
1333 |
+
if isinstance(message["content"], str):
|
1334 |
+
user_content += message["content"] + " "
|
1335 |
+
elif isinstance(message["content"], list):
|
1336 |
+
for item in message["content"]:
|
1337 |
+
if (
|
1338 |
+
isinstance(item, dict) and
|
1339 |
+
item.get("type") == "text"
|
1340 |
+
):
|
1341 |
+
user_content += (
|
1342 |
+
item.get("text", "") +
|
1343 |
+
" "
|
1344 |
+
)
|
1345 |
+
|
1346 |
+
user_content = user_content.strip()
|
1347 |
+
|
1348 |
+
user_content_replaced = user_content.replace(
|
1349 |
+
'\n', '\\n'
|
1350 |
+
).replace('\r', '\\n')
|
1351 |
+
response_content_replaced = response_content.replace(
|
1352 |
+
'\n', '\\n'
|
1353 |
+
).replace('\r', '\\n')
|
1354 |
+
|
1355 |
+
logging.info(
|
1356 |
+
f"使用的key: {api_key}, "
|
1357 |
+
f"提示token: {prompt_tokens}, "
|
1358 |
+
f"输出token: {completion_tokens}, "
|
1359 |
+
f"首字用时: {first_token_time:.4f}秒, "
|
1360 |
+
f"总共用时: {total_time:.4f}秒, "
|
1361 |
+
f"使用的模型: {model_name}, "
|
1362 |
+
f"用户的内容: {user_content_replaced}, "
|
1363 |
+
f"输出的内容: {response_content_replaced}"
|
1364 |
+
)
|
1365 |
+
|
1366 |
+
with data_lock:
|
1367 |
+
request_timestamps.append(time.time())
|
1368 |
+
token_counts.append(prompt_tokens+completion_tokens)
|
1369 |
+
|
1370 |
+
return Response(
|
1371 |
+
stream_with_context(generate()),
|
1372 |
+
content_type=response.headers['Content-Type']
|
1373 |
)
|
1374 |
+
else:
|
1375 |
+
response.raise_for_status()
|
1376 |
+
end_time = time.time()
|
1377 |
+
response_json = response.json()
|
1378 |
+
total_time = end_time - start_time
|
1379 |
+
|
1380 |
+
try:
|
1381 |
+
prompt_tokens = response_json["usage"]["prompt_tokens"]
|
1382 |
+
completion_tokens = response_json[
|
1383 |
+
"usage"
|
1384 |
+
]["completion_tokens"]
|
1385 |
+
response_content = response_json[
|
1386 |
+
"choices"
|
1387 |
+
][0]["message"]["content"]
|
1388 |
+
except (KeyError, ValueError, IndexError) as e:
|
1389 |
+
logging.error(
|
1390 |
+
f"解析非流式响应 JSON 失败: {e}, "
|
1391 |
+
f"完整内容: {response_json}"
|
1392 |
+
)
|
1393 |
+
prompt_tokens = 0
|
1394 |
+
completion_tokens = 0
|
1395 |
+
response_content = ""
|
1396 |
|
1397 |
+
user_content = ""
|
1398 |
+
messages = data.get("messages", [])
|
1399 |
+
for message in messages:
|
1400 |
+
if message["role"] == "user":
|
1401 |
+
if isinstance(message["content"], str):
|
1402 |
+
user_content += message["content"] + " "
|
1403 |
+
elif isinstance(message["content"], list):
|
1404 |
+
for item in message["content"]:
|
1405 |
+
if (
|
1406 |
+
isinstance(item, dict) and
|
1407 |
+
item.get("type") == "text"
|
1408 |
+
):
|
1409 |
+
user_content += (
|
1410 |
+
item.get("text", "") +
|
1411 |
+
" "
|
1412 |
+
)
|
1413 |
|
1414 |
+
user_content = user_content.strip()
|
|
|
|
|
|
|
|
|
1415 |
|
1416 |
+
user_content_replaced = user_content.replace(
|
1417 |
+
'\n', '\\n'
|
1418 |
+
).replace('\r', '\\n')
|
1419 |
+
response_content_replaced = response_content.replace(
|
1420 |
+
'\n', '\\n'
|
1421 |
+
).replace('\r', '\\n')
|
1422 |
|
1423 |
+
logging.info(
|
1424 |
+
f"使用的key: {api_key}, "
|
1425 |
+
f"提示token: {prompt_tokens}, "
|
1426 |
+
f"输出token: {completion_tokens}, "
|
1427 |
+
f"首字用时: 0, "
|
1428 |
+
f"总共用时: {total_time:.4f}秒, "
|
1429 |
+
f"使用的模型: {model_name}, "
|
1430 |
+
f"用户的内容: {user_content_replaced}, "
|
1431 |
+
f"输出的内容: {response_content_replaced}"
|
1432 |
+
)
|
1433 |
+
with data_lock:
|
1434 |
+
request_timestamps.append(time.time())
|
1435 |
+
if "prompt_tokens" in response_json["usage"] and "completion_tokens" in response_json["usage"]:
|
1436 |
+
token_counts.append(response_json["usage"]["prompt_tokens"] + response_json["usage"]["completion_tokens"])
|
1437 |
+
else:
|
1438 |
+
token_counts.append(0)
|
1439 |
+
|
1440 |
+
return jsonify(response_json)
|
1441 |
|
1442 |
except requests.exceptions.RequestException as e:
|
1443 |
logging.error(f"请求转发异常: {e}")
|
1444 |
+
return jsonify({"error": str(e)}), 500
|
|
|
|
|
1445 |
|
1446 |
if __name__ == '__main__':
|
1447 |
import json
|