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| import asyncio
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| import os
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| from contextlib import asynccontextmanager
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| from functools import partial
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| from typing import Annotated, Optional
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| from ..chat import ChatModel
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| from ..extras.constants import EngineName
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| from ..extras.misc import torch_gc
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| from ..extras.packages import is_fastapi_available, is_starlette_available, is_uvicorn_available
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| from .chat import (
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| create_chat_completion_response,
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| create_score_evaluation_response,
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| create_stream_chat_completion_response,
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| )
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| from .protocol import (
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| ChatCompletionRequest,
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| ChatCompletionResponse,
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| ModelCard,
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| ModelList,
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| ScoreEvaluationRequest,
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| ScoreEvaluationResponse,
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| )
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| if is_fastapi_available():
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| from fastapi import Depends, FastAPI, HTTPException, status
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| from fastapi.middleware.cors import CORSMiddleware
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| from fastapi.security.http import HTTPAuthorizationCredentials, HTTPBearer
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| if is_starlette_available():
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| from sse_starlette import EventSourceResponse
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| if is_uvicorn_available():
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| import uvicorn
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| async def sweeper() -> None:
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| while True:
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| torch_gc()
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| await asyncio.sleep(300)
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| @asynccontextmanager
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| async def lifespan(app: "FastAPI", chat_model: "ChatModel"):
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| if chat_model.engine.name == EngineName.HF:
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| asyncio.create_task(sweeper())
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| yield
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| torch_gc()
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| def create_app(chat_model: "ChatModel") -> "FastAPI":
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| root_path = os.getenv("FASTAPI_ROOT_PATH", "")
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| app = FastAPI(lifespan=partial(lifespan, chat_model=chat_model), root_path=root_path)
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| app.add_middleware(
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| CORSMiddleware,
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| allow_origins=["*"],
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| allow_credentials=True,
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| allow_methods=["*"],
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| allow_headers=["*"],
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| )
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| api_key = os.getenv("API_KEY")
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| security = HTTPBearer(auto_error=False)
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| async def verify_api_key(auth: Annotated[Optional[HTTPAuthorizationCredentials], Depends(security)]):
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| if api_key and (auth is None or auth.credentials != api_key):
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| raise HTTPException(status_code=status.HTTP_401_UNAUTHORIZED, detail="Invalid API key.")
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| @app.get(
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| "/v1/models",
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| response_model=ModelList,
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| status_code=status.HTTP_200_OK,
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| dependencies=[Depends(verify_api_key)],
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| )
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| async def list_models():
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| model_card = ModelCard(id=os.getenv("API_MODEL_NAME", "gpt-3.5-turbo"))
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| return ModelList(data=[model_card])
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| @app.post(
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| "/v1/chat/completions",
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| response_model=ChatCompletionResponse,
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| status_code=status.HTTP_200_OK,
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| dependencies=[Depends(verify_api_key)],
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| )
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| async def create_chat_completion(request: ChatCompletionRequest):
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| if not chat_model.engine.can_generate:
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| raise HTTPException(status_code=status.HTTP_405_METHOD_NOT_ALLOWED, detail="Not allowed")
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| if request.stream:
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| generate = create_stream_chat_completion_response(request, chat_model)
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| return EventSourceResponse(generate, media_type="text/event-stream", sep="\n")
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| else:
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| return await create_chat_completion_response(request, chat_model)
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| @app.post(
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| "/v1/score/evaluation",
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| response_model=ScoreEvaluationResponse,
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| status_code=status.HTTP_200_OK,
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| dependencies=[Depends(verify_api_key)],
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| )
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| async def create_score_evaluation(request: ScoreEvaluationRequest):
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| if chat_model.engine.can_generate:
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| raise HTTPException(status_code=status.HTTP_405_METHOD_NOT_ALLOWED, detail="Not allowed")
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| return await create_score_evaluation_response(request, chat_model)
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| return app
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| def run_api() -> None:
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| chat_model = ChatModel()
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| app = create_app(chat_model)
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| api_host = os.getenv("API_HOST", "0.0.0.0")
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| api_port = int(os.getenv("API_PORT", "8000"))
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| print(f"Visit http://localhost:{api_port}/docs for API document.")
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| uvicorn.run(app, host=api_host, port=api_port)
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