⚡ Live Interactive Code Sandbox: AI Dev Tool: PostgreSQL Vector Search (vr3a)
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```python # AI Dev Tool: FastAPI Pydantic v2 Micro-SaaS with PostgreSQL Vector Search Extension # ============================================================================== # This is a production-ready developer code asset for building high-performance Micro-SaaS applications. # It combines the power of FastAPI, Pydantic v2, and PostgreSQL Vector Search Extension. from fastapi import FastAPI, Depends from fastapi.responses import JSONResponse from pydantic import BaseModel from typing import List, Optional from sqlalchemy import create_engine, Column, Integer, String from sqlalchemy.ext.declarative import declarative_base from sqlalchemy.orm import sessionmaker, Session from sqlalchemy.exc import SQLAlchemyError from psycopg2.extras import Json # Initialize the FastAPI application app = FastAPI() # Define the PostgreSQL database connection SQLALCHEMY_DATABASE_URL = "postgresql://user:password@host:port/dbname" engine = create_engine(SQLALCHEMY_DATABASE_URL) SessionLocal = sessionmaker(autocommit=False, autoflush=False, bind=engine) # Define the base class for database models Base = declarative_base() # Define the database model for vector search class VectorSearchModel(Base): __tablename__ = "vector_search" id = Column(Integer, primary_key
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