add: main.py — MCP-сервер для управления памятью агента

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2026-06-30 17:40:56 +00:00
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import os
import asyncio
from typing import Any, Dict
from langchain_openai import ChatOpenAI
from langchain_core.messages import HumanMessage
from langchain.tools import tool
from deepagents import create_deep_agent
from deepagents.backends import CompositeBackend, LocalShellBackend, FilesystemBackend
# LLM via OpenRouter
llm = ChatOpenAI(
model="openai/gpt-oss-20b:free",
base_url="https://openrouter.ai/api/v1",
api_key=os.getenv("OPENAI_API_KEY"),
temperature=0.0,
)
backend = CompositeBackend(
[
LocalShellBackend(workspace_dir="./workspace"),
FilesystemBackend(),
]
)
# Tool that forwards calls to the MCP memory server
@tool
def memory_action(action: str, params: Dict[str, Any]) -> str:
"""
Perform a memory operation via the MCP server.
action: one of save_with_namespace, get_by_namespace, list_keys, delete, get, save
params: dictionary of parameters required by the chosen action.
Returns a JSON string with the server response.
"""
import json
import asyncio
from fastmcp import Client
async def _call():
client = Client("python memory_server.py")
await client.connect()
try:
result = await client.call_tool(action, params)
return json.dumps(result, ensure_ascii=False)
finally:
await client.close()
loop = asyncio.get_event_loop()
return loop.run_until_complete(_call())
agent = create_deep_agent(
model=llm,
tools=[memory_action],
backend=backend,
system_prompt="You are an assistant that can store and retrieve data using a remote memory server.",
)
async def demo():
# Example: store a name and then retrieve it
query = (
"Save the user name 'Алексей' in the default namespace using the memory_action tool. "
"Then read back all entries from the default namespace and return them."
)
result = await agent.ainvoke(
{"messages": [HumanMessage(content=query)]},
{"configurable": {"thread_id": "demo-1"}},
)
print(result["messages"][-1].content)
if __name__ == "__main__":
asyncio.run(demo())