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| import os | |
| import agent | |
| import gradio as gr | |
| import logic | |
| import pandas as pd | |
| from dotenv import load_dotenv | |
| load_dotenv() | |
| def run_and_submit_all( | |
| profile: gr.OAuthProfile | None, | |
| ) -> tuple[str, pd.DataFrame | None]: | |
| """Fetches all questions, runs the BasicAgent on them, submits all answers, | |
| and displays the results. | |
| Args: | |
| profile: An optional gr.OAuthProfile object containing user information | |
| if the user is logged in. If None, the user is not logged in. | |
| Returns: | |
| tuple[str, pd.DataFrame | None]: A tuple containing: | |
| - A string representing the status of the run and submission process. | |
| This could be a success message, an error message, or a message | |
| indicating that no answers were produced. | |
| - A pandas DataFrame containing the results log. This DataFrame will | |
| be displayed in the Gradio interface. It can be None if an error | |
| occurred before the agent was run. | |
| """ | |
| # 0. Get user details | |
| space_id = os.getenv("SPACE_ID") | |
| agent_code = f"https://huggingface.co/spaces/{space_id}/tree/main" | |
| print(agent_code) | |
| if profile: | |
| username = f"{profile.username}" | |
| print(f"User logged in: {username}") | |
| else: | |
| print("User not logged in.") | |
| return "Please Login to Hugging Face with the button.", None | |
| # 1. Instantiate Agent | |
| try: | |
| gaia_agent = agent.GaiaAgent() | |
| except Exception as e: | |
| print(f"Error instantiating agent: {e}") | |
| return f"Error initializing agent: {e}", None | |
| # 2. Fetch Questions | |
| try: | |
| questions_data = logic.fetch_all_questions() | |
| except Exception as e: | |
| return str(e), None | |
| # 3. Run the Agent | |
| results_log, answers_payload = logic.run_agent(gaia_agent, questions_data) | |
| if not answers_payload: | |
| print("Agent did not produce any answers to submit.") | |
| return "Agent did not produce any answers to submit.", pd.DataFrame(results_log) | |
| # 4. Prepare & Submit Answers | |
| submission_data = { | |
| "username": username.strip(), | |
| "agent_code": agent_code, | |
| "answers": answers_payload, | |
| } | |
| print( | |
| f"Agent finished. Submitting {len(answers_payload)} answers for user '" | |
| f"{username}'..." | |
| ) | |
| return logic.submit_answers(submission_data, results_log) | |
| # --- Build Gradio Interface using Blocks --- | |
| with gr.Blocks() as gaia_ui: | |
| gr.Markdown("# Basic Agent Evaluation Runner") | |
| gr.Markdown( | |
| """ | |
| **Instructions:** | |
| 1. Please clone this space, then modify the code to define your agent's | |
| logic, the tools, the necessary packages, etc ... | |
| 2. Log in to your Hugging Face account using the button below. This uses | |
| your HF username for submission. | |
| 3. Click 'Run Evaluation & Submit All Answers' to fetch questions, run your | |
| agent, submit answers, and see the score. | |
| --- | |
| **Disclaimers:** | |
| Once clicking on the "submit button, it can take quite some time ( this is | |
| the time for the agent to go through all the questions). | |
| This space provides a basic setup and is intentionally sub-optimal to | |
| encourage you to develop your own, more robust solution. For instance for the | |
| delay process of the submit button, a solution could be to cache the answers | |
| and submit in a separate action or even to answer the questions in async. | |
| """ | |
| ) | |
| gr.LoginButton() | |
| run_button = gr.Button("Run Evaluation & Submit All Answers") | |
| status_output = gr.Textbox( | |
| label="Run Status / Submission Result", lines=5, interactive=False | |
| ) | |
| # Removed max_rows=10 from DataFrame constructor | |
| results_table = gr.DataFrame(label="Questions and Agent Answers", wrap=True) | |
| run_button.click( | |
| fn=run_and_submit_all, inputs=None, outputs=[status_output, results_table] | |
| ) | |
| if __name__ == "__main__": | |
| print("\n" + "-" * 30 + " App Starting " + "-" * 30) | |
| # Check for SPACE_HOST and SPACE_ID at startup for information | |
| space_host_startup = os.getenv("SPACE_HOST") | |
| space_id_startup = os.getenv("SPACE_ID") # Get SPACE_ID at startup | |
| if space_host_startup: | |
| print(f"✅ SPACE_HOST found: {space_host_startup}") | |
| print(f" Runtime URL should be: https://{space_host_startup}.hf.space") | |
| else: | |
| print("ℹ️ SPACE_HOST environment variable not found (running locally?).") | |
| if space_id_startup: # Print repo URLs if SPACE_ID is found | |
| print(f"✅ SPACE_ID found: {space_id_startup}") | |
| print(f" Repo URL: https://huggingface.co/spaces/{space_id_startup}") | |
| print( | |
| f" Repo Tree URL: https://huggingface.co/spaces/" | |
| f"{space_id_startup}/tree/main" | |
| ) | |
| else: | |
| print( | |
| "ℹ️ SPACE_ID environment variable not found (running locally?). Repo URL " | |
| "cannot be determined." | |
| ) | |
| print("-" * (60 + len(" App Starting ")) + "\n") | |
| print("Launching Gradio Interface for Basic Agent Evaluation...") | |
| gaia_ui.launch(debug=True, share=True) |