Create agents.py
Browse files
agents.py
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import os
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from dotenv import load_dotenv
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from langgraph.graph import StateGraph, START, MessagesState
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from langgraph.prebuilt import ToolNode, tools_condition
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from langchain_google_genai import ChatGoogleGenerativeAI
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from langchain_groq import ChatGroq
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from langchain_huggingface import ChatHuggingFace, HuggingFaceEndpoint, HuggingFaceEmbeddings
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from langchain_community.tools.tavily_search import TavilySearchResults
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from langchain_community.document_loaders import WikipediaLoader, ArxivLoader
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from langchain_community.vectorstores import SupabaseVectorStore
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from langchain_core.messages import SystemMessage, HumanMessage
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from langchain_core.tools import tool
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from langchain.tools.retriever import create_retriever_tool
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from supabase.client import create_client, Client
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# Load environment variables
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load_dotenv()
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# ---- Basic Arithmetic Utilities ---- #
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@tool
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def multiply(a: int, b: int) -> int:
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"""Returns the product of two integers."""
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return a * b
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@tool
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def add(a: int, b: int) -> int:
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"""Returns the sum of two integers."""
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return a + b
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@tool
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def subtract(a: int, b: int) -> int:
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"""Returns the difference between two integers."""
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return a - b
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@tool
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def divide(a: int, b: int) -> float:
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"""Performs division and handles zero division errors."""
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if b == 0:
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raise ValueError("Division by zero is undefined.")
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return a / b
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@tool
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def modulus(a: int, b: int) -> int:
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"""Returns the remainder after division."""
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return a % b
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# ---- Search Tools ---- #
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@tool
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def search_wikipedia(query: str) -> str:
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"""Returns up to 2 documents related to a query from Wikipedia."""
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docs = WikipediaLoader(query=query, load_max_docs=2).load()
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return {"wiki_results": "\n\n---\n\n".join(
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f'<Document source="{doc.metadata["source"]}" page="{doc.metadata.get("page", "")}"/>\n{doc.page_content}'
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for doc in docs
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)}
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@tool
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def search_web(query: str) -> str:
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"""Fetches up to 3 web results using Tavily."""
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results = TavilySearchResults(max_results=3).invoke(query=query)
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return {"web_results": "\n\n---\n\n".join(
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f'<Document source="{doc.metadata["source"]}" page="{doc.metadata.get("page", "")}"/>\n{doc.page_content}'
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for doc in results
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)}
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@tool
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def search_arxiv(query: str) -> str:
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"""Retrieves up to 3 papers related to the query from ArXiv."""
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results = ArxivLoader(query=query, load_max_docs=3).load()
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return {"arvix_results": "\n\n---\n\n".join(
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f'<Document source="{doc.metadata["source"]}" page="{doc.metadata.get("page", "")}"/>\n{doc.page_content[:1000]}'
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for doc in results
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)}
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system_message = SystemMessage(content="""You are a helpful assistant tasked with answering questions using a set of tools. Now, I will ask you a question. Report your thoughts, and finish your answer with the following template:
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FINAL ANSWER: [YOUR FINAL ANSWER]
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YOUR FINAL ANSWER should be a number OR as few words as possible OR a comma-separated list of numbers and/or strings.
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- If you are asked for a number, don't use a comma in the number and avoid units like $ or % unless specified otherwise.
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- If you are asked for a string, avoid using articles and abbreviations (e.g. for cities), and write digits in plain text unless specified otherwise.
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- If you are asked for a comma-separated list, apply the above rules depending on whether each item is a number or string.
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Your answer should start only with "Responce: ", followed by your result.""")
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toolset = [
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multiply,
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add,
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subtract,
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divide,
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modulus,
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search_wikipedia,
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search_web,
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search_arxiv,
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]
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# ---- Graph Construction ---- #
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def create_agent_flow(provider: str = "groq"):
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"""Constructs the LangGraph conversational flow with tool support."""
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if provider == "google":
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llm = ChatGoogleGenerativeAI(model="gemini-2.0-flash", temperature=0)
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elif provider == "groq":
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llm = ChatGroq(model="qwen-qwq-32b", temperature=0)
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elif provider == "huggingface":
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llm = ChatHuggingFace(llm=HuggingFaceEndpoint(
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url="https://api-inference.huggingface.co/models/Meta-DeepLearning/llama-2-7b-chat-hf",
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temperature=0
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))
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else:
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raise ValueError("Unsupported provider. Choose from: 'google', 'groq', 'huggingface'.")
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llm_toolchain = llm.bind_tools(toolset)
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# Assistant node behavior
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def assistant_node(state: MessagesState):
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response = llm_toolchain.invoke(state["messages"])
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return {"messages": [response]}
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# Build the conversational graph
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graph = StateGraph(MessagesState)
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graph.add_node("assistant", assistant_node)
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graph.add_node("tools", ToolNode(toolset))
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graph.add_edge(START, "retriever")
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graph.add_edge("retriever", "assistant")
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graph.add_conditional_edges("assistant", tools_condition)
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graph.add_edge("tools", "assistant")
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return graph.compile()
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