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# import gradio as gr | |
# import random | |
# from smolagents import GradioUI, CodeAgent, HfApiModel | |
# # Import our custom tools from their modules | |
# from tools import DuckDuckGoSearchTool, WeatherInfoTool, HubStatsTool | |
# from retriever import load_guest_dataset | |
# # Initialize the Hugging Face model | |
# model = HfApiModel() | |
# # Initialize the web search tool | |
# search_tool = DuckDuckGoSearchTool() | |
# # Initialize the weather tool | |
# weather_info_tool = WeatherInfoTool() | |
# # Initialize the Hub stats tool | |
# hub_stats_tool = HubStatsTool() | |
# # Load the guest dataset and initialize the guest info tool | |
# guest_info_tool = load_guest_dataset() | |
# # Create Alfred with all the tools | |
# alfred = CodeAgent( | |
# tools=[guest_info_tool, weather_info_tool, hub_stats_tool, search_tool], | |
# model=model, | |
# add_base_tools=True, # Add any additional base tools | |
# planning_interval=3 # Enable planning every 3 steps | |
# ) | |
# if __name__ == "__main__": | |
# GradioUI(alfred).launch() | |
from typing import TypedDict, Annotated | |
from langgraph.graph.message import add_messages | |
from langchain_core.messages import AnyMessage, HumanMessage, AIMessage | |
from langgraph.prebuilt import ToolNode | |
from langgraph.graph import START, StateGraph | |
from langgraph.prebuilt import tools_condition | |
from langchain_huggingface import HuggingFaceEndpoint, ChatHuggingFace | |
from tools import DuckDuckGoSearchRun, weather_info_tool, hub_stats_tool | |
from retriever import guest_info_tool | |
# Initialize the web search tool | |
search_tool = DuckDuckGoSearchRun() | |
# Generate the chat interface, including the tools | |
llm = HuggingFaceEndpoint( | |
repo_id="Qwen/Qwen2.5-Coder-32B-Instruct", | |
huggingfacehub_api_token=HUGGINGFACEHUB_API_TOKEN, | |
) | |
chat = ChatHuggingFace(llm=llm, verbose=True) | |
tools = [guest_info_tool, search_tool, weather_info_tool, hub_stats_tool] | |
chat_with_tools = chat.bind_tools(tools) | |
# Generate the AgentState and Agent graph | |
class AgentState(TypedDict): | |
messages: Annotated[list[AnyMessage], add_messages] | |
def assistant(state: AgentState): | |
return { | |
"messages": [chat_with_tools.invoke(state["messages"])], | |
} | |
## The graph | |
builder = StateGraph(AgentState) | |
# Define nodes: these do the work | |
builder.add_node("assistant", assistant) | |
builder.add_node("tools", ToolNode(tools)) | |
# Define edges: these determine how the control flow moves | |
builder.add_edge(START, "assistant") | |
builder.add_conditional_edges( | |
"assistant", | |
# If the latest message requires a tool, route to tools | |
# Otherwise, provide a direct response | |
tools_condition, | |
) | |
builder.add_edge("tools", "assistant") | |
alfred = builder.compile() | |
if __name__ == "__main__": | |
GradioUI(alfred).launch() |