Вся логика ИИ перенесена в модуль ai. Логика инструментов выделена в отдельные подмодули. Исправлены все проблемы, обнаруженные PyCharm.
292 lines
13 KiB
Python
292 lines
13 KiB
Python
import datetime
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import json
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from dataclasses import dataclass
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from typing import List, Optional, Tuple, Union
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from openrouter import OpenRouter, RetryConfig
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from openrouter.components import AssistantMessage, AssistantMessageTypedDict, \
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ChatMessageToolCall, MessageTypedDict, SystemMessageTypedDict, ToolDefinitionJSONTypedDict
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from openrouter.errors import ResponseValidationError, OpenRouterError
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from openrouter.utils import BackoffStrategy
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import ai.tool
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from database import BasicDatabase
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from ai.utils import *
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from ai.tools import *
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OPENROUTER_X_TITLE = "TG/VK Chat Bot"
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OPENROUTER_HTTP_REFERER = "https://ultracoder.org"
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GROUP_CHAT_MAX_MESSAGES = 40
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PRIVATE_CHAT_MAX_MESSAGES = 40
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MAX_OUTPUT_TOKENS = 500
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@dataclass()
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class Message:
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user_name: str = None
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text: str = None
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image: bytes = None
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image_hires: bytes = None
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message_id: int = None
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class AiAgent:
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def __init__(self,
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openrouter_token: str, openrouter_model: str,
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fal_token: str, replicate_token: str, tavily_token: str,
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db: BasicDatabase,
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platform: str):
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retry_config = RetryConfig(strategy="backoff",
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backoff=BackoffStrategy(
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initial_interval=2000, max_interval=8000, exponent=2, max_elapsed_time=14000),
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retry_connection_errors=True)
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self.db = db
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self.openrouter_model = openrouter_model
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self.platform = platform
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self._load_prompts()
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self.client_openrouter = OpenRouter(api_key=openrouter_token,
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x_title=OPENROUTER_X_TITLE, http_referer=OPENROUTER_HTTP_REFERER,
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retry_config=retry_config)
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# Создание наборов инструментов
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self.toolsets: list[ai.tool.ToolSet] = []
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self.toolsets.append(
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ImageGenerationToolSet(fal_token=fal_token, replicate_token=replicate_token)
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)
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self.toolsets.append(TavilySearchToolSet(tavily_token=tavily_token))
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# Сбор всех инструментов
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self.tools: list[ai.tool.Tool] = []
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self.tools_descriptions: list[ToolDefinitionJSONTypedDict] = []
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for toolset in self.toolsets:
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self.tools.extend(toolset.functions)
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self.tools_descriptions.extend(toolset.get_all_tools_description())
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async def get_group_chat_reply(self, bot_id: int, chat_id: int,
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message: Message, forwarded_messages: List[Message]) -> Tuple[Message, bool]:
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message.text = _add_message_prefix(message.text, message.user_name)
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context = self._get_chat_context(is_group_chat=True, bot_id=bot_id, chat_id=chat_id)
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context.append(_serialize_message(role="user", text=message.text, image=message.image))
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for fwd_message in forwarded_messages:
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message_text = '<Цитируемое сообщение от {}>'.format(fwd_message.user_name)
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if fwd_message.text is not None:
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message_text += '\n' + fwd_message.text
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fwd_message.text = message_text
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context.append(_serialize_message(role="user", text=fwd_message.text, image=fwd_message.image))
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try:
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response = await self._generate_reply(bot_id, chat_id, context=context, allow_tools=True)
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ai_response = response.content
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tools_artifacts = {}
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if response.tool_calls is not None:
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tools_artifacts = await self._process_tool_calls(tool_calls=response.tool_calls, context=context)
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response2 = await self._generate_reply(bot_id, chat_id, context=context)
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ai_response = response2.content
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self.db.context_add_message(bot_id, chat_id, role="user", text=message.text, image=message.image,
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message_id=message.message_id, max_messages=GROUP_CHAT_MAX_MESSAGES)
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for fwd_message in forwarded_messages:
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self.db.context_add_message(bot_id, chat_id,
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role="user", text=fwd_message.text, image=fwd_message.image,
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message_id=fwd_message.message_id, max_messages=GROUP_CHAT_MAX_MESSAGES)
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self.db.context_add_message(bot_id, chat_id,
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role="assistant", text=ai_response,
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image=tools_artifacts.get("generated_image"),
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message_id=None, max_messages=GROUP_CHAT_MAX_MESSAGES)
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return Message(text=ai_response, image=tools_artifacts.get("generated_image"),
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image_hires=tools_artifacts.get("generated_image_hires")), True
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except Exception as e:
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if str(e).find("Rate limit exceeded") != -1:
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return Message(text="Извините, достигнут дневной лимит запросов к ИИ (обновляется в 03:00 МСК)."), False
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else:
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print(f"Ошибка выполнения запроса к ИИ: {e}")
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return Message(text=f"Извините, при обработке запроса произошла ошибка:\n{e}"), False
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async def get_private_chat_reply(self, bot_id: int, chat_id: int, message: Message) -> Tuple[Message, bool]:
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message.text = _add_message_prefix(message.text)
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context = self._get_chat_context(is_group_chat=False, bot_id=bot_id, chat_id=chat_id)
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context.append(_serialize_message(role="user", text=message.text, image=message.image))
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try:
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response = await self._generate_reply(bot_id, chat_id, context=context, allow_tools=True)
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context.append(_serialize_assistant_message(response))
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ai_response = response.content
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tools_artifacts = {}
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if response.tool_calls is not None:
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tools_artifacts = await self._process_tool_calls(tool_calls=response.tool_calls, context=context)
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response2 = await self._generate_reply(bot_id, chat_id, context=context)
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ai_response = response2.content
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self.db.context_add_message(bot_id, chat_id, role="user", text=message.text, image=message.image,
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message_id=message.message_id, max_messages=PRIVATE_CHAT_MAX_MESSAGES)
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self.db.context_add_message(bot_id, chat_id, role="assistant",
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text=ai_response, image=tools_artifacts.get("generated_image"),
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message_id=None, max_messages=PRIVATE_CHAT_MAX_MESSAGES)
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return Message(text=ai_response, image=tools_artifacts.get("generated_image"),
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image_hires=tools_artifacts.get("generated_image_hires")), True
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except Exception as e:
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if str(e).find("Rate limit exceeded") != -1:
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return Message(text="Извините, достигнут дневной лимит запросов к ИИ (обновляется в 03:00 МСК)."), False
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else:
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print(f"Ошибка выполнения запроса к ИИ: {e}")
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return Message(text=f"Извините, при обработке запроса произошла ошибка:\n{e}"), False
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def get_last_assistant_message_id(self, bot_id: int, chat_id: int):
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return self.db.context_get_last_assistant_message_id(bot_id, chat_id)
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def set_last_response_id(self, bot_id: int, chat_id: int, message_id: int):
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self.db.context_set_last_message_id(bot_id, chat_id, message_id)
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def clear_chat_context(self, bot_id: int, chat_id: int):
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self.db.context_clear(bot_id, chat_id)
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####################################################################################
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def _get_chat_context(self, is_group_chat: bool, bot_id: int, chat_id: int) -> List[MessageTypedDict]:
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context: List[MessageTypedDict] = [
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self._construct_system_prompt(is_group_chat=is_group_chat, bot_id=bot_id, chat_id=chat_id)
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]
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for message in self.db.context_get_messages(bot_id, chat_id):
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context.append(_serialize_message(message["role"], message["text"], message["image"]))
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return context
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def _construct_system_prompt(self, is_group_chat: bool, bot_id: int, chat_id: int) -> SystemMessageTypedDict:
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prompt = self.system_prompt_group_chat if is_group_chat else self.system_prompt_private_chat
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prompt = prompt.replace('{platform}', 'Telegram' if self.platform == 'tg' else 'VK')
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prompt += '\n# Доступные инструменты\n'
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for toolset in self.toolsets:
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prompt += '\n' + toolset.system_prompt
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prompt += '\n' + '# Дополнительные инструкции\n'
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bot = self.db.get_bot(bot_id)
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if bot['ai_prompt'] is not None:
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prompt += '\n' + bot['ai_prompt'] + '\n'
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chat = self.db.create_chat_if_not_exists(bot_id, chat_id)
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if chat['ai_prompt'] is not None:
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prompt += '\n' + chat['ai_prompt']
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return {"role": "system", "content": prompt}
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async def _generate_reply(self, bot_id: int, chat_id: int,
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context: List[MessageTypedDict], allow_tools: bool = False) -> AssistantMessage:
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response = await self._async_chat_completion_request(
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model=self.openrouter_model,
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messages=context,
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tools=self.tools_descriptions if allow_tools else None,
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tool_choice="auto" if allow_tools else None,
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max_tokens=MAX_OUTPUT_TOKENS,
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user=f'{self.platform}_{bot_id}_{chat_id}'
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)
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return self._filter_response(response.choices[0].message)
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async def _process_tool_calls(self, tool_calls: List[ChatMessageToolCall],
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context: List[MessageTypedDict]) -> dict:
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artifacts = {}
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if tool_calls is None:
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return artifacts
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tools_map = {tool.name: tool for tool in self.tools}
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for tool_call in tool_calls:
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tool_name = tool_call.function.name
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tool_args = json.loads(tool_call.function.arguments)
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if tool_name in tools_map:
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tool = tools_map[tool_name]
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# Вызов инструмента с передачей artifacts
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tool_result = await tool.execute(tool_args, artifacts)
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context.append({
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"role": "tool",
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"tool_call_id": tool_call.id,
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"content": tool_result
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})
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return artifacts
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async def _async_chat_completion_request(self, **kwargs):
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try:
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return await self.client_openrouter.chat.send_async(**kwargs)
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except ResponseValidationError as e:
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# Костыль для OpenRouter SDK:
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# https://github.com/OpenRouterTeam/python-sdk/issues/44
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body = json.loads(e.body)
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if "error" in body:
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try:
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raw_response = json.loads(body["error"]["metadata"]["raw"])
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message = str(raw_response["error"]["message"])
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e = RuntimeError(message)
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except Exception:
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pass
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raise e
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except OpenRouterError as e:
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if e.message == "Provider returned error":
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body = json.loads(e.body)
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try:
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raw_response = json.loads(body["error"]["metadata"]["raw"])
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message = str(raw_response["error"]["message"])
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e = RuntimeError(message)
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except Exception:
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pass
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raise e
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@staticmethod
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def _filter_response(response: AssistantMessage) -> AssistantMessage:
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text = str(response.content)
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text = text.replace("<image>", "")
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response.content = text
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return response
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def _load_prompts(self):
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with open("ai/prompts/group_chat.md", "r") as f:
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self.system_prompt_group_chat = f.read()
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with open("ai/prompts/private_chat.md", "r") as f:
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self.system_prompt_private_chat = f.read()
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def _add_message_prefix(text: Optional[str], username: Optional[str] = None) -> str:
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current_time = datetime.datetime.now().strftime("%d.%m.%Y %H:%M")
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prefix = f"[{current_time}, {username}]" if username is not None else f"[{current_time}]"
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return f"{prefix}: {text}" if text is not None else f"{prefix}:"
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def _serialize_message(role: str, text: Optional[str], image: Optional[bytes]) -> dict:
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return {"role": role, "content": serialize_message_content(text, image)}
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def _serialize_assistant_message(message: AssistantMessage) -> AssistantMessageTypedDict:
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return _remove_none_recursive(message.model_dump(by_alias=True))
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def _remove_none_recursive(data: Union[dict, list, any]) -> Union[dict, list, any]:
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if isinstance(data, dict):
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return {
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k: _remove_none_recursive(v)
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for k, v in data.items()
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if v is not None
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}
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elif isinstance(data, list):
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return [
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_remove_none_recursive(item)
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for item in data
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if item is not None
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]
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else:
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return data
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