GPU 서버 중앙 AI 라우팅 서비스 초기 구현: - OpenAI 호환 API (/v1/chat/completions, /v1/models, /v1/embeddings) - 모델 레지스트리 + 백엔드 헬스체크 (30초 루프) - Ollama SSE 프록시 (NDJSON → OpenAI SSE 변환) - JWT 인증 이중 경로 (httpOnly 쿠키 + Bearer 토큰) - owner/guest 역할 분리, 로그인 rate limiting - 백엔드별 rate limiting (NanoClaude 대비) - SQLite 스키마 사전 정의 (aiosqlite + WAL) - Docker Compose + Caddy 리버스 프록시 Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com>
93 lines
2.7 KiB
Python
93 lines
2.7 KiB
Python
from typing import List, Optional
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from fastapi import APIRouter, HTTPException, Request
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from fastapi.responses import JSONResponse, StreamingResponse
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from pydantic import BaseModel
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from middleware.rate_limit import check_backend_rate_limit
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from services import proxy_ollama
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from services.registry import registry
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router = APIRouter(prefix="/v1", tags=["chat"])
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class ChatMessage(BaseModel):
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role: str
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content: str
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class ChatRequest(BaseModel):
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model: str
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messages: List[ChatMessage]
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stream: bool = False
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temperature: Optional[float] = None
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max_tokens: Optional[int] = None
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@router.post("/chat/completions")
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async def chat_completions(body: ChatRequest, request: Request):
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role = getattr(request.state, "role", "anonymous")
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if role == "anonymous":
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raise HTTPException(
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status_code=401,
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detail={"error": {"message": "Authentication required", "type": "auth_error", "code": "unauthorized"}},
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)
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# Resolve model to backend
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result = registry.resolve_model(body.model, role)
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if not result:
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raise HTTPException(
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status_code=404,
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detail={
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"error": {
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"message": f"Model '{body.model}' not found or not available",
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"type": "invalid_request_error",
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"code": "model_not_found",
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}
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},
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)
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backend, model_info = result
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# Check rate limit
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check_backend_rate_limit(backend.id)
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# Record request for rate limiting
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registry.record_request(backend.id)
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messages = [{"role": m.role, "content": m.content} for m in body.messages]
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kwargs = {}
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if body.temperature is not None:
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kwargs["temperature"] = body.temperature
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# Route to appropriate proxy
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if backend.type == "ollama":
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if body.stream:
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return StreamingResponse(
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proxy_ollama.stream_chat(
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backend.url, body.model, messages, **kwargs
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),
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media_type="text/event-stream",
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headers={
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"Cache-Control": "no-cache",
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"X-Accel-Buffering": "no",
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},
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)
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else:
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result = await proxy_ollama.complete_chat(
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backend.url, body.model, messages, **kwargs
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)
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return JSONResponse(content=result)
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# Placeholder for other backend types
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raise HTTPException(
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status_code=501,
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detail={
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"error": {
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"message": f"Backend type '{backend.type}' not yet implemented",
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"type": "api_error",
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"code": "not_implemented",
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}
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},
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)
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