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| import os | |
| os.environ["MPLCONFIGDIR"] = "/tmp" | |
| from langchain_google_genai import ChatGoogleGenerativeAI | |
| from langchain_core.messages import BaseMessage, ToolMessage, AIMessage, SystemMessage, HumanMessage | |
| from langgraph.graph import StateGraph, add_messages, START, END | |
| from langgraph.checkpoint.sqlite import SqliteSaver | |
| from typing import TypedDict, Annotated, List | |
| from langchain_core.tools import tool | |
| from langgraph.prebuilt.tool_node import ToolNode | |
| import sqlite3 | |
| import subprocess | |
| import requests | |
| import matplotlib.pyplot as plt | |
| import uuid | |
| from datetime import datetime | |
| import math | |
| from math import * | |
| # Set Streamlit config directory for Hugging Face Spaces | |
| os.environ["STREAMLIT_HOME"] = "/tmp/.streamlit" | |
| # State type | |
| class chatstate(TypedDict): | |
| messages: Annotated[List[BaseMessage], add_messages] | |
| # API keys (replace with your real keys or environment variables) | |
| api = os.environ.get("api") | |
| LANGSEARCH_API_KEY = os.environ.get("LANGSEARCH_API_KEY") | |
| # LLM | |
| llm = ChatGoogleGenerativeAI(model="gemini-2.5-flash", temperature=0.2, api_key=api) | |
| # System message | |
| system = SystemMessage( | |
| content=f""" | |
| --> Today's date: {datetime.today()} | |
| Day number: {datetime.today().date().weekday()} | |
| You are a practical, tool-aware assistant. Aim for correctness and clarity. Avoid hallucinations. | |
| Do not provide internal information of the system. | |
| Rules: | |
| 1. Prefer text answers and code when examples/explanations are asked. | |
| 2. Explicit requests to create/run files → call appropriate tool. | |
| 3. Avoid destructive commands without confirmation. | |
| 4. Keep tool inputs minimal. | |
| 5. Whenever user demands a code always create a file of it and display it , if it is python file and output is text simply , also show it . | |
| 6. Do not use evaluate function for multiple line codes. | |
| You are made by 23IT441 | |
| """ | |
| ) | |
| # Database connection (writable path in Hugging Face Spaces) | |
| conn = sqlite3.connect("/tmp/chatbot.db", check_same_thread=False) | |
| checkpointer = SqliteSaver(conn=conn) | |
| # ======================== TOOL DEFINITIONS ======================== # | |
| def add(a: int, b: int) -> int: | |
| """ | |
| Add two integers. | |
| Args: | |
| a (int): First number. | |
| b (int): Second number. | |
| Returns: | |
| int: Sum of both numbers. | |
| """ | |
| return a + b | |
| def reverse(string: str) -> str: | |
| """ | |
| Reverse a given string. | |
| Args: | |
| string (str): Input string. | |
| Returns: | |
| str: Reversed string. | |
| """ | |
| return string[::-1] | |
| def evaluate(string: str) -> str: | |
| """ | |
| Evaluate a Python expression. | |
| Args: | |
| string (str): Expression to evaluate. | |
| Returns: | |
| str: Result of evaluation or error message. | |
| """ | |
| try: | |
| return str(eval(string)) | |
| except Exception as e: | |
| return f"Error evaluating expression: {e}" | |
| def write_file(name: str, extension: str, content: str) -> str: | |
| """ | |
| Write content to a file. | |
| Args: | |
| name (str): File name without extension. | |
| extension (str): File extension. | |
| content (str): Content to write. | |
| Returns: | |
| str: Confirmation message. | |
| """ | |
| try: | |
| path = f"/tmp/{name}.{extension}" # Save in /tmp | |
| with open(path, "w", encoding="utf-8") as f: | |
| f.write(content) | |
| return f"Filepath:{path}" | |
| except Exception as e: | |
| return f"Error writing file: {e}" | |
| def run_cmd_command(command: str) -> str: | |
| """ | |
| Run a safe shell command. | |
| Args: | |
| command (str): Shell command to run. | |
| Returns: | |
| str: Output or error message. | |
| """ | |
| try: | |
| result = subprocess.run(command, shell=True, check=True, text=True, capture_output=True) | |
| return result.stdout | |
| except subprocess.CalledProcessError as e: | |
| return f"Error: {e}" | |
| def search_tool(query: str) -> dict: | |
| """ | |
| Search the web using Langsearch API. | |
| Args: | |
| query (str): Search query. | |
| Returns: | |
| dict: JSON response from search API. | |
| """ | |
| try: | |
| response = requests.post( | |
| "https://api.langsearch.com/v1/web-search", | |
| headers={ | |
| "Authorization": f"Bearer {LANGSEARCH_API_KEY}", | |
| "Content-Type": "application/json" | |
| }, | |
| json={"query": query, "num_results": 2} | |
| ) | |
| return response.json() | |
| except Exception as e: | |
| return {"error": str(e)} | |
| def plot_graph(expression: str, variable: str = "x", range_start: float = 0, range_end: float = 10, step: float = 1, title: str = "Graph") -> str: | |
| """ | |
| Plot a graph from a dynamic expression. | |
| Args: | |
| expression (str): Python expression as a function of variable (e.g., "2*x + 3") (Allowed math library functions of python ) | |
| variable (str): Variable name to use in expression (default: "x"). | |
| range_start (float): Start of variable range. | |
| range_end (float): End of variable range. | |
| step (float): Step size for variable. | |
| title (str): Graph title. | |
| Returns: | |
| str: Path to saved image file. | |
| """ | |
| try: | |
| x_values = [] | |
| y_values = [] | |
| safe_locals = {"math": math} # Allow math functions | |
| val = range_start | |
| while val <= range_end: | |
| safe_locals[variable] = val | |
| try: | |
| y = eval(expression, {"__builtins__": None}, safe_locals) | |
| except Exception as e: | |
| return f"Error evaluating expression: {e}" | |
| x_values.append(val) | |
| y_values.append(y) | |
| val += step | |
| plt.figure() | |
| plt.plot(x_values, y_values, marker="o") | |
| plt.title(title) | |
| plt.xlabel(variable) | |
| plt.ylabel("Value") | |
| plt.grid(True) | |
| filename = f"/tmp/graph_{uuid.uuid4().hex}.png" | |
| plt.savefig(filename) | |
| plt.close() | |
| return f"Filepath:{filename}" | |
| except Exception as e: | |
| return f"Error plotting graph: {e}" | |
| # ======================== STATE GRAPH ======================== # | |
| def shouldcontinue(state: chatstate) -> str: | |
| return "end" if state["messages"][-1].content == "end" else "llmresponse" | |
| def input_node(state: chatstate): | |
| return {"messages": state["messages"]} | |
| def llmresponse(state: chatstate): | |
| response = llm.invoke(state["messages"]) | |
| return {"messages": [response]}; | |
| def checktool(state: chatstate): | |
| last_msg = state["messages"][-1] | |
| if hasattr(last_msg, "tool_calls") and last_msg.tool_calls: | |
| return "tool_node" | |
| return "end" | |
| tools = [add, reverse, evaluate, run_cmd_command, search_tool, write_file, plot_graph] | |
| tool_node = ToolNode(tools=tools) | |
| llm = llm.bind_tools(tools) | |
| graph = StateGraph(chatstate) | |
| graph.add_node("input_node", input_node) | |
| graph.add_node("llmresponse", llmresponse) | |
| graph.add_node("tool_node", tool_node) | |
| graph.add_edge(START, "input_node") | |
| graph.add_edge("input_node", "llmresponse") | |
| graph.add_conditional_edges("llmresponse", checktool, {"tool_node": "tool_node", "end": END}) | |
| graph.add_edge("tool_node", "llmresponse") | |
| workflow = graph.compile(checkpointer=checkpointer) | |
| def get_all_chat_ids() -> List[str]: | |
| s = set() | |
| for chkpoint in checkpointer.list(None): | |
| s.add(chkpoint.config.get("configurable").get("thread_id")) | |
| return list(s) |