add main.py
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"""
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Self‑correcting LangGraph agent.
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Run with:
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python main.py "Вычисли 2+2"
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The script will keep retrying until the LLM judge says `success` or the maximum number of attempts is reached.
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"""
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import random
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from typing import TypedDict, Dict
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# LangGraph imports
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from langgraph.graph import StateGraph
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from langgraph.checkpoint.memory import InMemorySaver
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from langchain_openai import ChatOpenAI
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from langchain_core.messages import HumanMessage, AIMessage
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# ---------- 1. State definition -------------------------------------------
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class AgentState(TypedDict):
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task: str
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result: str
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attempts: int
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status: str # pending | success | failed | max_attempts
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error: str | None
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max_attempts: int
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# ---------- 2. Tool -------------------------------------------------------
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class UnreliableTool:
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"""Simulates a tool that fails with ~30% probability."""
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def __call__(self, input_: str) -> str:
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if random.random() < 0.3:
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raise ValueError("Simulated tool failure")
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# Very simple evaluation: try to compute arithmetic expression
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try:
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return str(eval(input_))
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except Exception as e:
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raise ValueError(f"Evaluation error: {e}")
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unreliable_tool = UnreliableTool()
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# ---------- 3. Nodes -----------------------------------------------------
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async def execute_task(state: AgentState) -> Dict[str, str]:
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"""Runs the task using the unreliable tool."""
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try:
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result = unreliable_tool(state["task"])
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return {"result": result, "error": None}
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except Exception as e:
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return {"result": "", "error": str(e)}
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async def verify_result(state: AgentState) -> Dict[str, str]:
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"""LLM judge that decides success or failed."""
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llm = ChatOpenAI(temperature=0)
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# Ask the model to output only 'success' or 'failed'
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prompt = (
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f"Task: {state['task']}\n"
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f"Result: {state['result']}\n"
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"Is this result correct? Respond with either 'success' or 'failed'."
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)
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response = await llm.ainvoke(HumanMessage(content=prompt))
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verdict = response.content.strip().lower()
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if verdict not in {"success", "failed"}:
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# Fallback: treat as failed
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verdict = "failed"
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return {"status": verdict}
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async def handle_error(state: AgentState) -> Dict[str, str]:
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"""Increment attempts and prepare for retry."""
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new_attempts = state["attempts"] + 1
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if new_attempts >= state["max_attempts"]:
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return {"status": "max_attempts", "attempts": new_attempts}
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return {"attempts": new_attempts, "status": "pending"}
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# ---------- 4. Graph -----------------------------------------------------
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builder = StateGraph(AgentState)
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builder.add_node("execute_task", execute_task)
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builder.add_node("verify_result", verify_result)
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builder.add_node("handle_error", handle_error)
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builder.set_entry_point("execute_task")
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builder.add_edge("execute_task", "verify_result")
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builder.add_conditional_edges(
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"verify_result",
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lambda x: x["status"],
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{
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"success": "END",
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"failed": "handle_error",
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"max_attempts": "END",
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},
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)
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builder.add_edge("handle_error", "execute_task")
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graph = builder.compile(checkpointer=InMemorySaver())
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# ---------- 5. CLI -------------------------------------------------------
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if __name__ == "__main__":
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import sys
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if len(sys.argv) < 2:
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print("Usage: python main.py '<task>'")
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sys.exit(1)
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task_input = sys.argv[1]
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initial_state: AgentState = {
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"task": task_input,
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"result": "",
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"attempts": 0,
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"status": "pending",
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"error": None,
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"max_attempts": 5,
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}
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result = graph.invoke(initial_state)
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final_status = result["status"]
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attempts = result.get("attempts", 0) + 1 # include last attempt
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print(f"Задача: {task_input}")
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if final_status == "success":
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print(f"Итог: success за {attempts} попытки{'и' if attempts>1 else ''}")
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elif final_status == "max_attempts":
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print(f"Не удалось достичь успеха после {attempts} попыток.")
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else:
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print("Непредвиденный статус", final_status)
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"""
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