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import discord
import logging
import os
from huggingface_hub import InferenceClient
import asyncio
import subprocess
from datasets import load_dataset
# ๋ก๊น
์ค์
logging.basicConfig(level=logging.DEBUG, format='%(asctime)s:%(levelname)s:%(name)s: %(message)s', handlers=[logging.StreamHandler()])
# ์ธํ
ํธ ์ค์
intents = discord.Intents.default()
intents.message_content = True
intents.messages = True
intents.guilds = True
intents.guild_messages = True
# ๋ฐ์ดํฐ์
๋ก๋
data_files = ['train_0.csv', 'train_1.csv', 'train_2.csv', 'train_3.csv', 'train_4.csv', 'train_5.csv']
law_dataset = load_dataset('csv', data_files=data_files)
# ์ถ๋ก API ํด๋ผ์ด์ธํธ ์ค์
hf_client = InferenceClient("CohereForAI/c4ai-command-r-plus", token=os.getenv("HF_TOKEN"))
# ํน์ ์ฑ๋ ID
SPECIFIC_CHANNEL_ID = int(os.getenv("DISCORD_CHANNEL_ID"))
# ๋ํ ํ์คํ ๋ฆฌ๋ฅผ ์ ์ฅํ ์ ์ญ ๋ณ์
conversation_history = []
class MyClient(discord.Client):
def __init__(self, *args, **kwargs):
super().__init__(*args, **kwargs)
self.is_processing = False
async def on_ready(self):
logging.info(f'{self.user}๋ก ๋ก๊ทธ์ธ๋์์ต๋๋ค!')
subprocess.Popen(["python", "web.py"])
logging.info("Web.py server has been started.")
async def on_message(self, message):
if message.author == self.user:
return
if not self.is_message_in_specific_channel(message):
return
if self.is_processing:
return
self.is_processing = True
try:
response = await self.generate_response(message)
await message.channel.send(response)
finally:
self.is_processing = False
def is_message_in_specific_channel(self, message):
return message.channel.id == SPECIFIC_CHANNEL_ID or (
isinstance(message.channel, discord.Thread) and message.channel.parent_id == SPECIFIC_CHANNEL_ID
)
async def generate_response(self, message):
global conversation_history
user_input = message.content
user_mention = message.author.mention
system_message = f"{user_mention}, DISCORD์์ ์ฌ์ฉ์๋ค์ ์ง๋ฌธ์ ๋ตํ๋ ์ด์์คํดํธ์
๋๋ค."
answer = self.search_in_dataset(user_input, law_dataset)
full_response_text = system_message + "\n\n" + answer
if not full_response_text.strip():
full_response_text = "์ฃ์กํฉ๋๋ค, ์ ๋ณด๋ฅผ ์ ๊ณตํ ์ ์์ต๋๋ค."
max_length = 2000
if len(full_response_text) > max_length:
for i in range(0, len(full_response_text), max_length):
part_response = full_response_text[i:i+max_length]
await message.channel.send(part_response)
else:
await message.channel.send(full_response_text)
logging.debug(f'Full model response sent: {full_response_text}')
conversation_history.append({"role": "assistant", "content": full_response_text})
def search_in_dataset(self, query, dataset):
# ์ฌ์ฉ์์ ์ฟผ๋ฆฌ์ ๊ด๋ จ๋ ์ฌ๊ฑด๋ช
์ ์ฐพ์ ์ฌ๊ฑด๋ฒํธ๋ฅผ ๋ฐํํฉ๋๋ค.
response = []
for record in dataset['train']:
# ์ฌ๊ฑด๋ช
ํ๋๊ฐ None์ด ์๋ ๋๋ง ๊ฒ์ฌ๋ฅผ ์ํ
if record['์ฌ๊ฑด๋ช
'] and query in record['์ฌ๊ฑด๋ช
']:
detail = f"์ฌ๊ฑด๋ฒํธ: {record['์ฌ๊ฑด๋ฒํธ']}"
response.append(detail)
return "\n".join(response) if response else "๊ด๋ จ ๋ฒ๋ฅ ์ ๋ณด๋ฅผ ์ฐพ์ ์ ์์ต๋๋ค."
if __name__ == "__main__":
discord_client = MyClient(intents=intents)
discord_client.run(os.getenv('DISCORD_TOKEN'))
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