ForcePilot/src/agents/chatbot/graph.py

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import asyncio
import uuid
from typing import Any
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from datetime import datetime, timezone
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from langchain_core.runnables import RunnableConfig
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from langgraph.graph import StateGraph, START, END
from langgraph.prebuilt import ToolNode, tools_condition
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from langgraph.checkpoint.memory import MemorySaver # 实际上没有起作用
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from src.utils import logger
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from src.agents.registry import State, BaseAgent
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from src.agents.utils import load_chat_model, get_cur_time_with_utc
from src.agents.chatbot.configuration import ChatbotConfiguration
from src.agents.tools_factory import get_all_tools
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class ChatbotAgent(BaseAgent):
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name = "chatbot"
description = "基础的对话机器人,可以回答问题,默认不使用任何工具,可在配置中启用需要的工具。"
requirements = ["TAVILY_API_KEY", "ZHIPUAI_API_KEY"]
config_schema = ChatbotConfiguration
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def __init__(self, **kwargs):
super().__init__(**kwargs)
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def _get_tools(self, tools: list[str]):
"""根据配置获取工具。
默认不使用任何工具
如果配置为列表则使用列表中的工具
"""
platform_tools = get_all_tools()
if tools is None or not isinstance(tools, list) or len(tools) == 0:
# 默认不使用任何工具
logger.info("未配置工具或配置为空,不使用任何工具")
return []
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else:
# 使用配置中指定的工具
tool_names = [tool for tool in platform_tools.keys() if tool in tools]
logger.info(f"使用工具: {tool_names}")
return [platform_tools[tool] for tool in tool_names]
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def llm_call(self, state: State, config: RunnableConfig = None) -> dict[str, Any]:
"""调用 llm 模型"""
conf = self.config_schema.from_runnable_config(config, agent_name=self.name)
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system_prompt = f"{conf.system_prompt} Now is {get_cur_time_with_utc()}"
model = load_chat_model(conf.model)
model_with_tools = model.bind_tools(self._get_tools(conf.tools))
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logger.info(f"llm_call with config: {conf}, {conf.model}")
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res = model_with_tools.invoke(
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[{"role": "system", "content": system_prompt}, *state["messages"]]
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)
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return {"messages": [res]}
def get_graph(self, config_schema: RunnableConfig = None, **kwargs):
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"""构建图"""
conf = self.config_schema.from_runnable_config(config_schema, agent_name=self.name)
workflow = StateGraph(State, config_schema=self.config_schema)
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workflow.add_node("chatbot", self.llm_call)
workflow.add_node("tools", ToolNode(tools=self._get_tools(conf.tools)))
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workflow.add_edge(START, "chatbot")
workflow.add_conditional_edges(
"chatbot",
tools_condition,
)
workflow.add_edge("tools", "chatbot")
workflow.add_edge("chatbot", END)
graph = workflow.compile(checkpointer=MemorySaver())
return graph
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def main():
agent = ChatbotAgent(ChatbotConfiguration())
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thread_id = str(uuid.uuid4())
config = {"configurable": {"thread_id": thread_id}}
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from src.agents.utils import agent_cli
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agent_cli(agent, config)
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if __name__ == "__main__":
main()
# asyncio.run(main())