Updated LangGraph reflection agent with max_rounds logic.: update main.py
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@@ -1,86 +1,105 @@
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"""LangGraph reflection agent example.
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The agent writes a short answer, critiques it, and rewrites if needed.
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"""
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"""
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LangGraph Reflection Agent
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from typing import TypedDict, Dict
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Usage:
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python main.py "Your question"
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"""
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import sys
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import sys
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from typing import TypedDict, Dict
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from langgraph.graph import StateGraph, END
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# State definition
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from langgraph.prebuilt import create_react_agent
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from langchain_openai import ChatOpenAI
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# Define state
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class ReflectState(TypedDict):
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class ReflectState(TypedDict):
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question: str
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question: str
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draft: str
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draft: str
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critique: str
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critique: str
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verdict: str # "ok" | "needs_revision"
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verdict: str # 'ok' or 'needs_revision'
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round: int
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round: int
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max_rounds: int
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max_rounds: int
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# LLM
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# Node functions
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llm = ChatOpenAI(model="gpt-4o-mini", temperature=0)
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async def draft_answer(state: Dict) -> Dict:
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from langchain_openai import ChatOpenAI
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# Draft node
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llm = ChatOpenAI(model="gpt-3.5-turbo")
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async def draft_answer(state: ReflectState) -> Dict:
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prompt = f"Write a concise answer (5–10 sentences) to the following question:\n\n{state['question']}"
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prompt = f"Write a short answer (5–10 sentences) to the following question: {state['question']}"
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response = await llm.invoke(prompt)
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response = await llm.ainvoke(prompt)
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state["draft"] = response.content
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state['draft'] = response.content
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return state
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return state
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# Critique node
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async def reflect(state: Dict) -> Dict:
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async def reflect(state: ReflectState) -> Dict:
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from langchain_openai import ChatOpenAI
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llm = ChatOpenAI(model="gpt-3.5-turbo")
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prompt = (
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prompt = (
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f"You are a critic. Evaluate the following draft answer for completeness, specificity, and lack of filler.\n"
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f"You are a critic evaluating the draft answer for completeness, specificity, and lack of filler.\n"
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f"Draft: {state['draft']}\n"
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f"Draft: {state['draft']}\n"
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f"Give a verdict: 'ok' or 'needs_revision'.\n"
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"Provide verdict (ok or needs_revision) and 2–3 bullet points of critique."
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f"If needs_revision, provide 2–3 points of critique."
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)
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)
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response = await llm.ainvoke(prompt)
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response = await llm.invoke(prompt)
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# Simple parsing: first line verdict, rest critique
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# Simple parsing
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lines = response.content.strip().splitlines()
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text = response.content.strip()
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verdict = lines[0].strip().lower()
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if "needs_revision" in text.lower():
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critique = "\n".join(lines[1:]).strip()
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state["verdict"] = "needs_revision"
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state['verdict'] = verdict
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else:
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state['critique'] = critique
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state["verdict"] = "ok"
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state["critique"] = text
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return state
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return state
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# Rewrite node
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async def rewrite(state: Dict) -> Dict:
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async def rewrite(state: ReflectState) -> Dict:
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from langchain_openai import ChatOpenAI
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llm = ChatOpenAI(model="gpt-3.5-turbo")
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prompt = (
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prompt = (
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f"Rewrite the draft answer taking into account the following critique: {state['critique']}\n"
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f"Rewrite the draft answer incorporating the following critique:\n"
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f"Original draft: {state['draft']}"
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f"Critique: {state['critique']}\n"
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"Provide a revised concise answer (5–10 sentences)."
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)
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)
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response = await llm.ainvoke(prompt)
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response = await llm.invoke(prompt)
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state['draft'] = response.content
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state["draft"] = response.content
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state['round'] += 1
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state["round"] += 1
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return state
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return state
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# Build graph
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# Build graph
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builder = StateGraph(ReflectState)
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from langgraph.graph import StateGraph
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builder.add_node("draft_answer", draft_answer)
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builder.add_node("reflect", reflect)
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builder.add_node("rewrite", rewrite)
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builder.set_entry_point("draft_answer")
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graph_builder = StateGraph(ReflectState)
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builder.add_edge("draft_answer", "reflect")
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builder.add_conditional_edges(
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graph_builder.add_node("draft_answer", draft_answer)
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graph_builder.add_node("reflect", reflect)
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graph_builder.add_node("rewrite", rewrite)
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# Connections
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start_edge = "draft_answer"
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end_edge = None # will be set in condition
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def should_end(state: Dict) -> str:
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if state["verdict"] == "ok":
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return "END"
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if state["round"] >= state.get("max_rounds", 2):
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return "END"
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return "rewrite"
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# Add edges with condition
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from langgraph.graph import END
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graph_builder.set_entry_point(start_edge)
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graph_builder.add_conditional_edges(
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"reflect",
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"reflect",
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lambda state: (
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should_end,
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"END"
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{
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if state["verdict"] == "ok"
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"rewrite": "rewrite",
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or state.get("round", 0) >= state.get("max_rounds", 2)
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"END": END,
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else "rewrite"
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},
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),
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)
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)
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builder.add_edge("rewrite", "reflect")
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# rewrite -> reflect
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graph = builder.compile()
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graph_builder.add_edge("rewrite", "reflect")
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graph = graph_builder.compile()
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if __name__ == "__main__":
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if __name__ == "__main__":
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if len(sys.argv) < 2:
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if len(sys.argv) < 2:
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print("Usage: python main.py <question>")
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print("Usage: python main.py \"Your question\"")
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sys.exit(1)
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sys.exit(1)
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question = sys.argv[1]
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question = sys.argv[1]
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initial_state: ReflectState = {
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initial_state: ReflectState = {
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@@ -92,6 +111,7 @@ if __name__ == "__main__":
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"max_rounds": 2,
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"max_rounds": 2,
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}
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}
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result = graph.invoke(initial_state)
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result = graph.invoke(initial_state)
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print("\nFinal answer:\n", result["draft"])
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print("\n--- Final Answer ---")
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print("\nCritique:\n", result["critique"])
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print(result["draft"])
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print("\nVerdict:\n", result["verdict"])
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print("\n--- Critique ---")
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print(result["critique"])
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