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""" |
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Synapse-Base Inference API |
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FastAPI server for chess move prediction |
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Optimized for HF Spaces CPU environment |
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""" |
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from fastapi import FastAPI, HTTPException |
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from fastapi.middleware.cors import CORSMiddleware |
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from pydantic import BaseModel, Field |
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import time |
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import logging |
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from typing import Optional |
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from engine import SynapseEngine |
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logging.basicConfig( |
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level=logging.INFO, |
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format='%(asctime)s - %(name)s - %(levelname)s - %(message)s' |
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) |
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logger = logging.getLogger(__name__) |
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app = FastAPI( |
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title="Synapse-Base Inference API", |
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description="High-performance chess engine powered by 38M parameter neural network", |
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version="3.0.0" |
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) |
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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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engine = None |
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class MoveRequest(BaseModel): |
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fen: str = Field(..., description="Board position in FEN notation") |
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depth: Optional[int] = Field(3, ge=1, le=5, description="Search depth (1-5)") |
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time_limit: Optional[int] = Field(5000, ge=1000, le=30000, description="Time limit in ms") |
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class MoveResponse(BaseModel): |
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best_move: str |
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evaluation: float |
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depth_searched: int |
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nodes_evaluated: int |
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time_taken: int |
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pv: Optional[list] = None |
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class HealthResponse(BaseModel): |
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status: str |
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model_loaded: bool |
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version: str |
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@app.on_event("startup") |
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async def startup_event(): |
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"""Load model on startup""" |
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global engine |
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logger.info("π Starting Synapse-Base Inference API...") |
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try: |
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engine = SynapseEngine( |
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model_path="/app/models/synapse_base.onnx", |
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num_threads=2 |
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) |
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logger.info("β
Model loaded successfully") |
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logger.info(f"π Model size: {engine.get_model_size():.2f} MB") |
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except Exception as e: |
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logger.error(f"β Failed to load model: {e}") |
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raise |
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@app.get("/health", response_model=HealthResponse) |
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async def health_check(): |
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"""Health check endpoint""" |
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return { |
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"status": "healthy" if engine is not None else "unhealthy", |
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"model_loaded": engine is not None, |
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"version": "3.0.0" |
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} |
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@app.post("/get-move", response_model=MoveResponse) |
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async def get_move(request: MoveRequest): |
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""" |
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Get best move for given position |
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Args: |
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request: MoveRequest with FEN, depth, and time_limit |
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Returns: |
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MoveResponse with best_move and evaluation |
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""" |
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if engine is None: |
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raise HTTPException(status_code=503, detail="Model not loaded") |
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if not engine.validate_fen(request.fen): |
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raise HTTPException(status_code=400, detail="Invalid FEN string") |
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start_time = time.time() |
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try: |
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result = engine.get_best_move( |
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fen=request.fen, |
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depth=request.depth, |
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time_limit=request.time_limit |
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) |
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time_taken = int((time.time() - start_time) * 1000) |
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logger.info( |
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f"Move: {result['best_move']} | " |
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f"Eval: {result['evaluation']:.3f} | " |
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f"Depth: {result['depth_searched']} | " |
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f"Nodes: {result['nodes_evaluated']} | " |
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f"Time: {time_taken}ms" |
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) |
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return MoveResponse( |
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best_move=result['best_move'], |
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evaluation=result['evaluation'], |
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depth_searched=result['depth_searched'], |
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nodes_evaluated=result['nodes_evaluated'], |
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time_taken=time_taken, |
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pv=result.get('pv', None) |
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) |
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except Exception as e: |
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logger.error(f"Error processing move: {e}") |
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raise HTTPException(status_code=500, detail=str(e)) |
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@app.get("/") |
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async def root(): |
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"""Root endpoint with API info""" |
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return { |
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"name": "Synapse-Base Inference API", |
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"version": "3.0.0", |
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"model": "38.1M parameters", |
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"architecture": "CNN-Transformer Hybrid", |
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"endpoints": { |
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"POST /get-move": "Get best move for position", |
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"GET /health": "Health check", |
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"GET /docs": "API documentation" |
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} |
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} |
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if __name__ == "__main__": |
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import uvicorn |
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uvicorn.run( |
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app, |
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host="0.0.0.0", |
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port=7860, |
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log_level="info", |
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access_log=True |
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) |