add main.py
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import os
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from langchain_openai import ChatOpenAI
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from langchain_core.messages import HumanMessage
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from langchain.tools import tool
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from langgraph.checkpoint.memory import MemorySaver
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from langgraph.types import Command
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# LLM setup
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llm = ChatOpenAI(
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model="openai/gpt-oss-20b:free",
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base_url="https://openrouter.ai/api/v1",
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api_key=os.getenv("OPENAI_API_KEY"),
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temperature=0.0,
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)
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# Dummy tool: get_price
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@tool
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def get_price(product: str, city: str) -> str:
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"""Return a markdown table with price for a product in a city."""
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# In a real scenario, fetch from API. Here we return a static example.
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return f"| Продукт | Цена (руб.) | Магазин |\n| {product} | 89 | Магнит |"
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# Agent definition
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from langchain.agents import create_agent
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agent = create_agent(
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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 call get_price to provide price information.",
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)
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# Stream execution
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stream = agent.stream(
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{
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"messages": [HumanMessage(content="Покажи цену молока и хлеба в Казани.")]
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},
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stream_mode=["messages", "updates"],
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)
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step = 1
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def format_chunk_message(chunk):
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message, meta = chunk
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global step
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if meta.get("langgraph_step") != step:
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step = meta.get("langgraph_step")
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print("\n --- --- --- \n")
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if message.content:
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print(message.content, end="", flush=True)
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def format_message(message):
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if message.content:
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return message.content
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return f"{message.tool_calls[0]['name']}({message.tool_calls[0]['args']})"
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for chunk in stream:
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chunk_type, chunk_data = chunk
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if chunk_type == "messages":
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format_chunk_message(chunk_data)
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elif chunk_type == "updates":
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if chunk_data.get("model"):
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last_message = chunk_data["model"]["messages"][-1]
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print(format_message(last_message))
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print("\n--- Завершено ---")
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