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Реализован модуль YandexGPT первой версии. Реализованы методы: генерация ответа с помощью YandexGPT и YandexGPT-lite, перевод текста с помощью YandexGPT, проверка орфографии и пунктуации с помощью YandexGPT, краткий пересказ истории чата с помощью Yandex Text Summarization Model.
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@ -1,5 +1,11 @@
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TELEGRAM:
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TOKEN: xxxxxxxxxxxxxxxxxxxx
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YANDEXGPT:
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TOKEN: xxxxxxxxxxxxxxxxxxxx
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CATALOGID: xxxxxxxxxxxxxxxxxxxx
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PROMPT: Тестовый пример промпта
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ROLES:
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ADMIN: 0
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MODERATOR: 1
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src/modules/external/yandexgpt/yandexgpt.py
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src/modules/external/yandexgpt/yandexgpt.py
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import requests
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import json
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import asyncio
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import aiohttp
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from ...standard.database import *
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from ...standard.config.config import *
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class YandexGPT:
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self.token = None
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self.catalog_id = None
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self.language = {
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"ru": "русский язык",
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"en": "английский язык",
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"de": "немецкий язык",
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"uk": "украинский язык",
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"es": "испанский язык",
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"be": "белорусский язык",
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}
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def __init__(self, token, catalog_id):
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self.token = token
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self.catalog_id = catalog_id
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async def async_token_check(self, messages, gpt, max_tokens, del_msg_id=1):
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url = "https://llm.api.cloud.yandex.net/foundationModels/v1/tokenize"
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while True:
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text = ""
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for message in messages:
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text += message["text"]
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try:
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response = requests.post(url, json={"model": gpt, "text": text})
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except Exception as e: # TODO: Переделать обработку ошибок
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print(e)
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continue
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if int(response.text) < max_tokens - 2000:
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break
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else:
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messages.pop(del_msg_id)
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return messages
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async def async_request(*, url, headers, prompt) -> dict:
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async with aiohttp.ClientSession() as session:
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async with session.post(url, headers=headers, json=prompt) as response:
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return await response.json()
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async def async_yandexgpt_lite(self, system_prompt, input_messages, stream=False, temperature=0.6, max_tokens=8000):
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url = "https://llm.api.cloud.yandex.net/foundationModels/v1/completion"
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gpt = f"gpt://{self.catalog_id}/yandexgpt-lite/latest"
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headers = {
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"Content-Type": "application/json",
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"Authorization": f"Api-Key {self.token}"
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}
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messages = [{"role": "system", "text": system_prompt}]
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for message in input_messages:
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messages.append(message)
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messages = await self.async_token_check(messages, gpt, max_tokens)
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prompt = {
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"modelUri": gpt,
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"completionOptions": {
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"stream": stream,
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"temperature": temperature,
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"maxTokens": max_tokens
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},
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"messages": messages
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}
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response = requests.post(url, headers=headers, json=prompt).text
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return json.loads(response)["result"]["alternatives"][0]["message"]["text"]
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async def async_yandexgpt(self, system_prompt, input_messages, stream=False, temperature=0.6, max_tokens=8000):
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url = "https://llm.api.cloud.yandex.net/foundationModels/v1/completion"
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gpt = f"gpt://{self.catalog_id}/yandexgpt/latest"
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headers = {
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"Content-Type": "application/json",
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"Authorization": f"Api-Key {self.token}"
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}
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messages = [{"role": "system", "text": system_prompt}]
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for message in input_messages:
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messages.append(message)
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messages = await self.async_token_check(messages, gpt, max_tokens)
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prompt = {
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"modelUri": gpt,
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"completionOptions": {
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"stream": stream,
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"temperature": temperature,
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"maxTokens": max_tokens
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},
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"messages": messages
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}
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response = requests.post(url, headers=headers, json=prompt).text
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return json.loads(response)["result"]["alternatives"][0]["message"]["text"]
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async def async_yandexgpt_translate(self, input_language, output_language, text):
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input_language = self.languages[input_language]
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output_language = self.languages[output_language]
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return await self.async_yandexgpt(
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f"Переведи на {output_language} сохранив оригинальный смысл текста. Верни только результат:",
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[{"role": "user", "text": text}],
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stream=False, temperature=0.6, max_tokens=8000
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)
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async def async_yandexgpt_spelling_check(self, input_language, text):
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input_language = self.languages[input_language]
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return await self.async_yandexgpt(
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f"Проверьте орфографию и пунктуацию текста на {input_language}. Верни исправленный текст "
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f"без смысловых искажений:",
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[{"role": "user", "text": text}],
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stream=False, temperature=0.6, max_tokens=8000
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)
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async def async_yandexgpt_text_history(self, messages, stream=False, temperature=0.6, max_tokens=8000):
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url = "https://llm.api.cloud.yandex.net/foundationModels/v1/completion"
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gpt = f"gpt://{self.catalog_id}/summarization/latest"
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headers = {
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"Content-Type": "application/json",
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"Authorization": f"Api-Key {self.token}"
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}
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messages = []
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for message in input_messages:
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messages.append(message)
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messages = await self.async_token_check(messages, gpt, max_tokens, del_msg_id=0)
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prompt = {
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"modelUri": gpt,
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"completionOptions": {
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"stream": stream,
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"temperature": temperature,
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"maxTokens": max_tokens
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},
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"messages": messages
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}
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response = requests.post(url, headers=headers, json=prompt).text
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return json.loads(response)["result"]["alternatives"][0]["message"]["text"]
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async def async_yandex_cloud_text_to_speech(self, text, voice, emotion, speed, format, quality):
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tts = "tts.api.cloud.yandex.net/speech/v1/tts:synthesize"
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# TODO: Сделать функцию TTS
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return 0
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async def async_yandex_cloud_vision(self, image, features, language):
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# TODO: Сделать функцию Vision
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return 0
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async def collect_messages(self, message_id, chat_id):
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messages = []
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# Собираем цепочку сообщений в формате: [{"role": "user", "text": "<Имя_пользователя>: Привет!"},
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# {"role": "assistant", "text": "Привет!"}]
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while True:
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message = get_message_text(chat_id, message_id)
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if get_message_ai_model(chat_id, start_message_id) != None:
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messages.append({"role": "assistant", "text": message})
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else:
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sender_name = get_user_name(get_message_sender_id(chat_id, start_message_id))
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messages.append({"role": "user", "text": sender_name + ": " + message})
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message_id = get_message_answer_to_message_id(chat_id, message_id)
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if message_id is None:
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break
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return messages.reverse()
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async def collecting_messages_for_history(self, start_message_id, end_message_id, chat_id):
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messages = []
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# Собираем цепочку сообщений в формате: [{"role": "user", "text": "<Имя_пользователя>: Привет!"},
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# {"role": "assistant", "text": "Привет!"}]
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while True:
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message = get_message_text(chat_id, start_message_id)
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if get_message_ai_model(chat_id, start_message_id) != None:
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messages.append({"role": "assistant", "text": message})
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else:
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sender_name = get_user_name(get_message_sender_id(chat_id, start_message_id))
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messages.append({"role": "user", "text": sender_name + ": " + message})
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start_message_id -= 1
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if start_message_id <= end_message_id:
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break
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return messages.reverse()
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async def yandexgpt_request(self, message_id = None, type = "yandexgpt-lite", chat_id = None,
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message_id_end = None):
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if type == "yandexgpt-lite":
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messages = await self.collect_messages(message_id, chat_id)
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return await self.async_yandexgpt_lite(
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system_prompt=get_yandexgpt_prompt(),
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input_messages=messages,
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stream=False, temperature=0.6, max_tokens=8000
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)
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elif type == "yandexgpt":
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messages = await self.collect_messages(message_id, chat_id)
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return await self.async_yandexgpt(
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system_prompt=get_yandexgpt_prompt(),
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input_messages=messages,
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stream=False, temperature=0.6, max_tokens=8000
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)
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elif type == "yandexgpt-translate":
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return await self.async_yandexgpt_translate(
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input_language=get_message_language(chat_id, message_id),
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output_language=get_chat_language(chat_id),
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text=get_message_text(chat_id, message_id)
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)
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elif type == "yandexgpt-spelling-check":
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return await self.async_yandexgpt_spelling_check(
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input_language=get_message_language(chat_id, message_id),
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text=get_message_text(chat_id, message_id)
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)
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elif type == "yandexgpt-text-history":
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messages = await self.collect_messages_for_history(message_id, message_id_end, chat_id)
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return await self.async_yandexgpt_text_history(
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messages=messages,
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stream=False, temperature=0.6, max_tokens=8000
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)
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else:
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return "Ошибка: Неизвестный тип запроса | Error: Unknown request type"
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@ -16,4 +16,10 @@ def get_config(is_test: bool = False) -> dict:
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def get_yandexgpt_token() -> str:
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return get_config()["YANDEX_GPT_TOKEN"]
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def get_yandexgpt_catalog_id() -> str:
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return get_config()["YANDEX_GPT_CATALOG_ID"]
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def get_yandexgpt_prompt() -> str:
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return get_config()["YANDEX_GPT_PROMPT"]
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