2024-09-24 13:23:53 +03:00
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from __future__ import annotations
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from aiohttp import ClientSession
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import json
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from ..typing import AsyncResult, Messages, ImageType
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from ..image import to_data_uri
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from .base_provider import AsyncGeneratorProvider, ProviderModelMixin
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from .helper import format_prompt
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class DeepInfraChat(AsyncGeneratorProvider, ProviderModelMixin):
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url = "https://deepinfra.com/chat"
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api_endpoint = "https://api.deepinfra.com/v1/openai/chat/completions"
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working = True
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supports_stream = True
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supports_system_message = True
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supports_message_history = True
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default_model = 'meta-llama/Meta-Llama-3.1-70B-Instruct'
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models = [
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'meta-llama/Meta-Llama-3.1-405B-Instruct',
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'meta-llama/Meta-Llama-3.1-70B-Instruct',
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'meta-llama/Meta-Llama-3.1-8B-Instruct',
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'mistralai/Mixtral-8x22B-Instruct-v0.1',
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'mistralai/Mixtral-8x7B-Instruct-v0.1',
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'microsoft/WizardLM-2-8x22B',
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'microsoft/WizardLM-2-7B',
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'Qwen/Qwen2-72B-Instruct',
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'microsoft/Phi-3-medium-4k-instruct',
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'google/gemma-2-27b-it',
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'openbmb/MiniCPM-Llama3-V-2_5', # Image upload is available
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'mistralai/Mistral-7B-Instruct-v0.3',
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'lizpreciatior/lzlv_70b_fp16_hf',
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'openchat/openchat-3.6-8b',
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'Phind/Phind-CodeLlama-34B-v2',
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'cognitivecomputations/dolphin-2.9.1-llama-3-70b',
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]
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model_aliases = {
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"llama-3.1-405b": "meta-llama/Meta-Llama-3.1-405B-Instruct",
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"llama-3.1-70b": "meta-llama/Meta-Llama-3.1-70B-Instruct",
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2024-09-27 00:24:44 +03:00
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"llama-3.1-8B": "meta-llama/Meta-Llama-3.1-8B-Instruct",
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2024-09-24 13:23:53 +03:00
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"mixtral-8x22b": "mistralai/Mixtral-8x22B-Instruct-v0.1",
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"mixtral-8x7b": "mistralai/Mixtral-8x7B-Instruct-v0.1",
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"wizardlm-2-8x22b": "microsoft/WizardLM-2-8x22B",
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"wizardlm-2-7b": "microsoft/WizardLM-2-7B",
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"qwen-2-72b": "Qwen/Qwen2-72B-Instruct",
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"phi-3-medium-4k": "microsoft/Phi-3-medium-4k-instruct",
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"gemma-2b-27b": "google/gemma-2-27b-it",
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2024-09-27 00:24:44 +03:00
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"minicpm-llama-3-v2.5": "openbmb/MiniCPM-Llama3-V-2_5", # Image upload is available
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2024-09-24 13:23:53 +03:00
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"mistral-7b": "mistralai/Mistral-7B-Instruct-v0.3",
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2024-09-27 00:24:44 +03:00
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"lzlv-70b": "lizpreciatior/lzlv_70b_fp16_hf",
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2024-09-24 13:23:53 +03:00
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"openchat-3.6-8b": "openchat/openchat-3.6-8b",
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"phind-codellama-34b-v2": "Phind/Phind-CodeLlama-34B-v2",
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"dolphin-2.9.1-llama-3-70b": "cognitivecomputations/dolphin-2.9.1-llama-3-70b",
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}
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@classmethod
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def get_model(cls, model: str) -> str:
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if model in cls.models:
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return model
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elif model in cls.model_aliases:
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return cls.model_aliases[model]
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else:
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return cls.default_model
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@classmethod
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async def create_async_generator(
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cls,
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model: str,
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messages: Messages,
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proxy: str = None,
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image: ImageType = None,
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image_name: str = None,
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**kwargs
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) -> AsyncResult:
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model = cls.get_model(model)
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headers = {
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'Accept-Language': 'en-US,en;q=0.9',
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'Cache-Control': 'no-cache',
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'Connection': 'keep-alive',
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'Content-Type': 'application/json',
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'Origin': 'https://deepinfra.com',
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'Pragma': 'no-cache',
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'Referer': 'https://deepinfra.com/',
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'Sec-Fetch-Dest': 'empty',
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'Sec-Fetch-Mode': 'cors',
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'Sec-Fetch-Site': 'same-site',
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'User-Agent': 'Mozilla/5.0 (X11; Linux x86_64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/128.0.0.0 Safari/537.36',
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'X-Deepinfra-Source': 'web-embed',
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'accept': 'text/event-stream',
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'sec-ch-ua': '"Not;A=Brand";v="24", "Chromium";v="128"',
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'sec-ch-ua-mobile': '?0',
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'sec-ch-ua-platform': '"Linux"',
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}
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async with ClientSession(headers=headers) as session:
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prompt = format_prompt(messages)
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data = {
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'model': model,
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'messages': [
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{'role': 'system', 'content': 'Be a helpful assistant'},
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{'role': 'user', 'content': prompt}
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],
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'stream': True
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}
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if model == 'openbmb/MiniCPM-Llama3-V-2_5' and image is not None:
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data['messages'][-1]['content'] = [
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{
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'type': 'image_url',
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'image_url': {
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'url': to_data_uri(image)
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}
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},
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{
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'type': 'text',
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'text': messages[-1]['content']
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}
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]
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async with session.post(cls.api_endpoint, json=data, proxy=proxy) as response:
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response.raise_for_status()
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async for line in response.content:
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if line:
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decoded_line = line.decode('utf-8').strip()
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if decoded_line.startswith('data:'):
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json_part = decoded_line[5:].strip()
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if json_part == '[DONE]':
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break
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try:
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data = json.loads(json_part)
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choices = data.get('choices', [])
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if choices:
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delta = choices[0].get('delta', {})
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content = delta.get('content', '')
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if content:
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yield content
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except json.JSONDecodeError:
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print(f"JSON decode error: {json_part}")
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