update main.py
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@@ -1,7 +1,7 @@
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"""
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"""
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Main entry point for the agent with memory and human‑in‑the‑loop confirmation.
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Main entry point for the agent with memory and human‑in‑the‑loop confirmation.
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The agent is built on top of LangGraph's `create_agent` API. It uses a
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The agent is built on top of LangChain's `create_agent` API. It uses a
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`MemorySaver` checkpoint to keep conversation history across calls, and it
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`MemorySaver` checkpoint to keep conversation history across calls, and it
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is configured with `interrupt_before=["tools"]` so that the agent pauses just
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is configured with `interrupt_before=["tools"]` so that the agent pauses just
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before invoking any tool. The pause allows us to ask the user for explicit
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before invoking any tool. The pause allows us to ask the user for explicit
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@@ -30,8 +30,8 @@ from langchain_openai import ChatOpenAI
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from langchain_core.messages import HumanMessage, SystemMessage
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from langchain_core.messages import HumanMessage, SystemMessage
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from langgraph.checkpoint.memory import MemorySaver
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from langgraph.checkpoint.memory import MemorySaver
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from langgraph.types import Command
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from langgraph.types import Command
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from langgraph.graph import StateGraph
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from langchain.agents import create_agent
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from langgraph.graph.message import add_messages
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from langchain.tools import tool
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from rich.console import Console
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from rich.console import Console
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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@@ -49,6 +49,7 @@ llm = ChatOpenAI(
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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# Simple tool – in a real scenario replace with an actual API call.
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# Simple tool – in a real scenario replace with an actual API call.
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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@tool
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async def get_price(query: Dict[str, Any]) -> str:
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async def get_price(query: Dict[str, Any]) -> str:
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"""Pretend to fetch a price for a product.
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"""Pretend to fetch a price for a product.
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@@ -68,49 +69,23 @@ async def get_price(query: Dict[str, Any]) -> str:
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return f"The price of {product} is 42.00 {currency}."
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return f"The price of {product} is 42.00 {currency}."
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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# Agent definition
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# Agent definition using create_agent (LangChain)
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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memory = MemorySaver()
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memory = MemorySaver()
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agent = StateGraph(
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agent = create_agent(
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state_schema=dict(messages=list, next=tuple)
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llm=llm,
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tools=[get_price],
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system_prompt="You are a helpful assistant that can query prices.",
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checkpointer=memory,
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interrupt_before=["tools"], # pause before any tool call
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)
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)
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# Node that simply forwards the messages to the LLM.
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# Compile the agent into a graph with checkpointing.
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async def llm_node(state: Dict[str, Any]) -> Tuple[Dict[str, Any], str]:
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# The LLM expects a list of messages; we pass the current history.
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response = await llm.ainvoke(state["messages"])
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return {"messages": state["messages"] + [response]}, "next"
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# Node that handles tool calls – for this example we only have get_price.
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async def tool_node(state: Dict[str, Any]) -> Tuple[Dict[str, Any], str]:
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# The last message should contain a tool call.
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last_msg = state["messages"][-1]
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if not hasattr(last_msg, "tool_calls") or not last_msg.tool_calls:
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return state, "next"
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tool_call = last_msg.tool_calls[0]
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name = tool_call.name
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args = json.loads(tool_call.args)
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if name == "get_price":
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result = await get_price(args)
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# Append the tool output as a new message.
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state["messages"].append(
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HumanMessage(content=f"Tool {name} returned: {result}")
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)
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return state, "next"
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agent.add_node("llm", llm_node)
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agent.add_node("tool", tool_node)
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agent.set_entry_point("llm")
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agent.add_edge("llm", "tool")
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agent.add_edge("tool", "llm")
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# Compile the graph with a MemorySaver checkpoint.
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graph = agent.compile(checkpointer=memory, interrupt_before=["tools"])
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graph = agent.compile(checkpointer=memory, interrupt_before=["tools"])
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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# Helper to run the agent with human‑in‑the‑loop confirmation.
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# Helper to run the agent and pause before each tool call.
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# ---------------------------------------------------------------------------
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# ---------------------------------------------------------------------------
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async def ask_and_run(user_input: Dict[str, Any], config: Dict[str, Any]):
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async def ask_and_run(user_input: Dict[str, Any], config: Dict[str, Any]):
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"""Run the agent and pause before each tool call.
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"""Run the agent and pause before each tool call.
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@@ -157,10 +132,11 @@ if __name__ == "__main__":
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console.print("[bold green]Welcome to the agent demo![/]")
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console.print("[bold green]Welcome to the agent demo![/]")
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console.print("Type 'exit' to quit.")
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console.print("Type 'exit' to quit.")
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import asyncio
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# Example 1 – simple chat (no tool call).
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# Example 1 – simple chat (no tool call).
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console.print("\n[underline]Example 1: Simple question[/]")
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console.print("\n[underline]Example 1: Simple question[/]")
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user_msg = {"messages": [HumanMessage(content="What is the capital of France?")]}
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user_msg = {"messages": [HumanMessage(content="What is the capital of France?")]}
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import asyncio
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asyncio.run(ask_and_run(user_msg, config))
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asyncio.run(ask_and_run(user_msg, config))
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# Example 2 – tool call with confirmation.
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# Example 2 – tool call with confirmation.
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