Spaces:
Sleeping
Sleeping
initial commit
Browse files- .devcontainer/Dockerfile +13 -0
- .devcontainer/devcontainer.json +26 -0
- .gitattributes +35 -35
- .gitignore +29 -0
- README.md +14 -14
- app.py +195 -195
- requirements.txt +1 -1
.devcontainer/Dockerfile
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FROM python:3.12-slim
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WORKDIR /Final_Assignment
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# Install only what you need
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COPY requirements.txt .
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RUN apt-get update && apt-get install -y --no-install-recommends git \
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&& rm -rf /var/lib/apt/lists/* \
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&& pip install --upgrade pip \
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&& pip install -r requirements.txt
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EXPOSE 7860
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CMD ["bash"]
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.devcontainer/devcontainer.json
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{
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"name": "Final_Assignment Dev Container",
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"build": {
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"dockerfile": "Dockerfile",
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"context": ".."
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},
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"workspaceFolder": "/Final_Assignment",
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"forwardPorts": [8080, 8888],
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"mounts": [
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"source=${localWorkspaceFolder},target=/Final_Assignment,type=bind,consistency=cached"
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],
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"customizations": {
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"vscode": {
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"extensions": [
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"ms-python.python"
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],
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"settings": {
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"python.defaultInterpreterPath": "/usr/local/bin/python"
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}
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}
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},
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"runArgs": [
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"--env-file",
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".env"
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]
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}
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.gitattributes
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*.7z filter=lfs diff=lfs merge=lfs -text
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*.joblib filter=lfs diff=lfs merge=lfs -text
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*.lfs.* filter=lfs diff=lfs merge=lfs -text
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*.mlmodel filter=lfs diff=lfs merge=lfs -text
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*.model filter=lfs diff=lfs merge=lfs -text
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*.msgpack filter=lfs diff=lfs merge=lfs -text
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*.npy filter=lfs diff=lfs merge=lfs -text
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*.npz filter=lfs diff=lfs merge=lfs -text
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*.onnx filter=lfs diff=lfs merge=lfs -text
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*.parquet filter=lfs diff=lfs merge=lfs -text
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*.pb filter=lfs diff=lfs merge=lfs -text
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*.pickle filter=lfs diff=lfs merge=lfs -text
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*.pkl filter=lfs diff=lfs merge=lfs -text
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*.pt filter=lfs diff=lfs merge=lfs -text
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*.pth filter=lfs diff=lfs merge=lfs -text
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*.rar filter=lfs diff=lfs merge=lfs -text
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*.safetensors filter=lfs diff=lfs merge=lfs -text
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saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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*.tar.* filter=lfs diff=lfs merge=lfs -text
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*.tar filter=lfs diff=lfs merge=lfs -text
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*.tflite filter=lfs diff=lfs merge=lfs -text
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*.tgz filter=lfs diff=lfs merge=lfs -text
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*.wasm filter=lfs diff=lfs merge=lfs -text
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*.xz filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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*.7z filter=lfs diff=lfs merge=lfs -text
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*.arrow filter=lfs diff=lfs merge=lfs -text
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*.bin filter=lfs diff=lfs merge=lfs -text
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*.bz2 filter=lfs diff=lfs merge=lfs -text
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*.ckpt filter=lfs diff=lfs merge=lfs -text
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*.ftz filter=lfs diff=lfs merge=lfs -text
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*.gz filter=lfs diff=lfs merge=lfs -text
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*.h5 filter=lfs diff=lfs merge=lfs -text
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*.joblib filter=lfs diff=lfs merge=lfs -text
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*.lfs.* filter=lfs diff=lfs merge=lfs -text
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*.mlmodel filter=lfs diff=lfs merge=lfs -text
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*.model filter=lfs diff=lfs merge=lfs -text
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*.msgpack filter=lfs diff=lfs merge=lfs -text
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*.npy filter=lfs diff=lfs merge=lfs -text
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*.npz filter=lfs diff=lfs merge=lfs -text
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*.onnx filter=lfs diff=lfs merge=lfs -text
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*.ot filter=lfs diff=lfs merge=lfs -text
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*.parquet filter=lfs diff=lfs merge=lfs -text
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*.pb filter=lfs diff=lfs merge=lfs -text
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*.pickle filter=lfs diff=lfs merge=lfs -text
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*.pkl filter=lfs diff=lfs merge=lfs -text
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*.pt filter=lfs diff=lfs merge=lfs -text
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*.pth filter=lfs diff=lfs merge=lfs -text
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*.rar filter=lfs diff=lfs merge=lfs -text
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*.safetensors filter=lfs diff=lfs merge=lfs -text
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saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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*.tar.* filter=lfs diff=lfs merge=lfs -text
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*.tar filter=lfs diff=lfs merge=lfs -text
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*.tflite filter=lfs diff=lfs merge=lfs -text
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*.tgz filter=lfs diff=lfs merge=lfs -text
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*.wasm filter=lfs diff=lfs merge=lfs -text
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*.xz filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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.gitignore
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# Byte-compiled / optimized / DLL files
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__pycache__/
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*.py[cod]
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*$py.class
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# Virtual Environments
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venv/
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.venv/
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# Environment variables file
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.env
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# Logs and debug
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*.log
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logs/
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# OS-specific files
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.DS_Store
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Thumbs.db
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# Machine specific devcontainer file
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.devcontainer/devcontainer.local.json
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# Firebase Studio addition
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.vscode/
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# Cache
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cache/
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.cache/
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README.md
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---
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title: Template Final Assignment
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emoji: 🕵🏻♂️
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colorFrom: indigo
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colorTo: indigo
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sdk: gradio
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sdk_version: 5.25.2
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app_file: app.py
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pinned: false
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hf_oauth: true
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# optional, default duration is 8 hours/480 minutes. Max duration is 30 days/43200 minutes.
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hf_oauth_expiration_minutes: 480
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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---
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title: Template Final Assignment
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emoji: 🕵🏻♂️
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colorFrom: indigo
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colorTo: indigo
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sdk: gradio
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sdk_version: 5.25.2
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app_file: app.py
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pinned: false
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hf_oauth: true
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# optional, default duration is 8 hours/480 minutes. Max duration is 30 days/43200 minutes.
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hf_oauth_expiration_minutes: 480
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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app.py
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import os
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import gradio as gr
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import requests
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import inspect
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import pandas as pd
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# (Keep Constants as is)
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# --- Constants ---
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DEFAULT_API_URL = "https://agents-course-unit4-scoring.hf.space"
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# --- Basic Agent Definition ---
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# ----- THIS IS WERE YOU CAN BUILD WHAT YOU WANT ------
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class BasicAgent:
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def __init__(self):
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print("BasicAgent initialized.")
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def __call__(self, question: str) -> str:
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print(f"Agent received question (first 50 chars): {question[:50]}...")
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fixed_answer = "This is a default answer."
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print(f"Agent returning fixed answer: {fixed_answer}")
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return fixed_answer
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def run_and_submit_all( profile: gr.OAuthProfile | None):
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"""
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Fetches all questions, runs the BasicAgent on them, submits all answers,
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and displays the results.
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"""
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# --- Determine HF Space Runtime URL and Repo URL ---
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space_id = os.getenv("SPACE_ID") # Get the SPACE_ID for sending link to the code
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if profile:
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username= f"{profile.username}"
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print(f"User logged in: {username}")
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else:
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print("User not logged in.")
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return "Please Login to Hugging Face with the button.", None
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api_url = DEFAULT_API_URL
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questions_url = f"{api_url}/questions"
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submit_url = f"{api_url}/submit"
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# 1. Instantiate Agent ( modify this part to create your agent)
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try:
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agent = BasicAgent()
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except Exception as e:
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print(f"Error instantiating agent: {e}")
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return f"Error initializing agent: {e}", None
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# In the case of an app running as a hugging Face space, this link points toward your codebase ( usefull for others so please keep it public)
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agent_code = f"https://huggingface.co/spaces/{space_id}/tree/main"
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print(agent_code)
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# 2. Fetch Questions
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print(f"Fetching questions from: {questions_url}")
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try:
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response = requests.get(questions_url, timeout=15)
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response.raise_for_status()
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questions_data = response.json()
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if not questions_data:
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print("Fetched questions list is empty.")
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return "Fetched questions list is empty or invalid format.", None
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print(f"Fetched {len(questions_data)} questions.")
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except requests.exceptions.RequestException as e:
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print(f"Error fetching questions: {e}")
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return f"Error fetching questions: {e}", None
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except requests.exceptions.JSONDecodeError as e:
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print(f"Error decoding JSON response from questions endpoint: {e}")
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print(f"Response text: {response.text[:500]}")
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return f"Error decoding server response for questions: {e}", None
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except Exception as e:
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print(f"An unexpected error occurred fetching questions: {e}")
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return f"An unexpected error occurred fetching questions: {e}", None
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-
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# 3. Run your Agent
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results_log = []
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answers_payload = []
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print(f"Running agent on {len(questions_data)} questions...")
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for item in questions_data:
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task_id = item.get("task_id")
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question_text = item.get("question")
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if not task_id or question_text is None:
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print(f"Skipping item with missing task_id or question: {item}")
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continue
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try:
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submitted_answer = agent(question_text)
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answers_payload.append({"task_id": task_id, "submitted_answer": submitted_answer})
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results_log.append({"Task ID": task_id, "Question": question_text, "Submitted Answer": submitted_answer})
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except Exception as e:
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print(f"Error running agent on task {task_id}: {e}")
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results_log.append({"Task ID": task_id, "Question": question_text, "Submitted Answer": f"AGENT ERROR: {e}"})
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if not answers_payload:
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print("Agent did not produce any answers to submit.")
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return "Agent did not produce any answers to submit.", pd.DataFrame(results_log)
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-
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# 4. Prepare Submission
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submission_data = {"username": username.strip(), "agent_code": agent_code, "answers": answers_payload}
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status_update = f"Agent finished. Submitting {len(answers_payload)} answers for user '{username}'..."
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print(status_update)
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-
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# 5. Submit
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print(f"Submitting {len(answers_payload)} answers to: {submit_url}")
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try:
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response = requests.post(submit_url, json=submission_data, timeout=60)
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response.raise_for_status()
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result_data = response.json()
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final_status = (
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f"Submission Successful!\n"
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f"User: {result_data.get('username')}\n"
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f"Overall Score: {result_data.get('score', 'N/A')}% "
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f"({result_data.get('correct_count', '?')}/{result_data.get('total_attempted', '?')} correct)\n"
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f"Message: {result_data.get('message', 'No message received.')}"
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)
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print("Submission successful.")
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results_df = pd.DataFrame(results_log)
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return final_status, results_df
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except requests.exceptions.HTTPError as e:
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error_detail = f"Server responded with status {e.response.status_code}."
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try:
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error_json = e.response.json()
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error_detail += f" Detail: {error_json.get('detail', e.response.text)}"
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except requests.exceptions.JSONDecodeError:
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error_detail += f" Response: {e.response.text[:500]}"
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status_message = f"Submission Failed: {error_detail}"
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print(status_message)
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results_df = pd.DataFrame(results_log)
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return status_message, results_df
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except requests.exceptions.Timeout:
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status_message = "Submission Failed: The request timed out."
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print(status_message)
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results_df = pd.DataFrame(results_log)
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return status_message, results_df
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except requests.exceptions.RequestException as e:
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status_message = f"Submission Failed: Network error - {e}"
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print(status_message)
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results_df = pd.DataFrame(results_log)
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return status_message, results_df
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except Exception as e:
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status_message = f"An unexpected error occurred during submission: {e}"
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print(status_message)
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results_df = pd.DataFrame(results_log)
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return status_message, results_df
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-
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-
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# --- Build Gradio Interface using Blocks ---
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with gr.Blocks() as demo:
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gr.Markdown("# Basic Agent Evaluation Runner")
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gr.Markdown(
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"""
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**Instructions:**
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-
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1. Please clone this space, then modify the code to define your agent's logic, the tools, the necessary packages, etc ...
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2. Log in to your Hugging Face account using the button below. This uses your HF username for submission.
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3. Click 'Run Evaluation & Submit All Answers' to fetch questions, run your agent, submit answers, and see the score.
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-
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---
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**Disclaimers:**
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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).
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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 seperate action or even to answer the questions in async.
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"""
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)
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gr.LoginButton()
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run_button = gr.Button("Run Evaluation & Submit All Answers")
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status_output = gr.Textbox(label="Run Status / Submission Result", lines=5, interactive=False)
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# Removed max_rows=10 from DataFrame constructor
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results_table = gr.DataFrame(label="Questions and Agent Answers", wrap=True)
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168 |
-
|
169 |
-
run_button.click(
|
170 |
-
fn=run_and_submit_all,
|
171 |
-
outputs=[status_output, results_table]
|
172 |
-
)
|
173 |
-
|
174 |
-
if __name__ == "__main__":
|
175 |
-
print("\n" + "-"*30 + " App Starting " + "-"*30)
|
176 |
-
# Check for SPACE_HOST and SPACE_ID at startup for information
|
177 |
-
space_host_startup = os.getenv("SPACE_HOST")
|
178 |
-
space_id_startup = os.getenv("SPACE_ID") # Get SPACE_ID at startup
|
179 |
-
|
180 |
-
if space_host_startup:
|
181 |
-
print(f"✅ SPACE_HOST found: {space_host_startup}")
|
182 |
-
print(f" Runtime URL should be: https://{space_host_startup}.hf.space")
|
183 |
-
else:
|
184 |
-
print("ℹ️ SPACE_HOST environment variable not found (running locally?).")
|
185 |
-
|
186 |
-
if space_id_startup: # Print repo URLs if SPACE_ID is found
|
187 |
-
print(f"✅ SPACE_ID found: {space_id_startup}")
|
188 |
-
print(f" Repo URL: https://huggingface.co/spaces/{space_id_startup}")
|
189 |
-
print(f" Repo Tree URL: https://huggingface.co/spaces/{space_id_startup}/tree/main")
|
190 |
-
else:
|
191 |
-
print("ℹ️ SPACE_ID environment variable not found (running locally?). Repo URL cannot be determined.")
|
192 |
-
|
193 |
-
print("-"*(60 + len(" App Starting ")) + "\n")
|
194 |
-
|
195 |
-
print("Launching Gradio Interface for Basic Agent Evaluation...")
|
196 |
demo.launch(debug=True, share=False)
|
|
|
1 |
+
import os
|
2 |
+
import gradio as gr
|
3 |
+
import requests
|
4 |
+
import inspect
|
5 |
+
import pandas as pd
|
6 |
+
|
7 |
+
# (Keep Constants as is)
|
8 |
+
# --- Constants ---
|
9 |
+
DEFAULT_API_URL = "https://agents-course-unit4-scoring.hf.space"
|
10 |
+
|
11 |
+
# --- Basic Agent Definition ---
|
12 |
+
# ----- THIS IS WERE YOU CAN BUILD WHAT YOU WANT ------
|
13 |
+
class BasicAgent:
|
14 |
+
def __init__(self):
|
15 |
+
print("BasicAgent initialized.")
|
16 |
+
def __call__(self, question: str) -> str:
|
17 |
+
print(f"Agent received question (first 50 chars): {question[:50]}...")
|
18 |
+
fixed_answer = "This is a default answer."
|
19 |
+
print(f"Agent returning fixed answer: {fixed_answer}")
|
20 |
+
return fixed_answer
|
21 |
+
|
22 |
+
def run_and_submit_all( profile: gr.OAuthProfile | None):
|
23 |
+
"""
|
24 |
+
Fetches all questions, runs the BasicAgent on them, submits all answers,
|
25 |
+
and displays the results.
|
26 |
+
"""
|
27 |
+
# --- Determine HF Space Runtime URL and Repo URL ---
|
28 |
+
space_id = os.getenv("SPACE_ID") # Get the SPACE_ID for sending link to the code
|
29 |
+
|
30 |
+
if profile:
|
31 |
+
username= f"{profile.username}"
|
32 |
+
print(f"User logged in: {username}")
|
33 |
+
else:
|
34 |
+
print("User not logged in.")
|
35 |
+
return "Please Login to Hugging Face with the button.", None
|
36 |
+
|
37 |
+
api_url = DEFAULT_API_URL
|
38 |
+
questions_url = f"{api_url}/questions"
|
39 |
+
submit_url = f"{api_url}/submit"
|
40 |
+
|
41 |
+
# 1. Instantiate Agent ( modify this part to create your agent)
|
42 |
+
try:
|
43 |
+
agent = BasicAgent()
|
44 |
+
except Exception as e:
|
45 |
+
print(f"Error instantiating agent: {e}")
|
46 |
+
return f"Error initializing agent: {e}", None
|
47 |
+
# In the case of an app running as a hugging Face space, this link points toward your codebase ( usefull for others so please keep it public)
|
48 |
+
agent_code = f"https://huggingface.co/spaces/{space_id}/tree/main"
|
49 |
+
print(agent_code)
|
50 |
+
|
51 |
+
# 2. Fetch Questions
|
52 |
+
print(f"Fetching questions from: {questions_url}")
|
53 |
+
try:
|
54 |
+
response = requests.get(questions_url, timeout=15)
|
55 |
+
response.raise_for_status()
|
56 |
+
questions_data = response.json()
|
57 |
+
if not questions_data:
|
58 |
+
print("Fetched questions list is empty.")
|
59 |
+
return "Fetched questions list is empty or invalid format.", None
|
60 |
+
print(f"Fetched {len(questions_data)} questions.")
|
61 |
+
except requests.exceptions.RequestException as e:
|
62 |
+
print(f"Error fetching questions: {e}")
|
63 |
+
return f"Error fetching questions: {e}", None
|
64 |
+
except requests.exceptions.JSONDecodeError as e:
|
65 |
+
print(f"Error decoding JSON response from questions endpoint: {e}")
|
66 |
+
print(f"Response text: {response.text[:500]}")
|
67 |
+
return f"Error decoding server response for questions: {e}", None
|
68 |
+
except Exception as e:
|
69 |
+
print(f"An unexpected error occurred fetching questions: {e}")
|
70 |
+
return f"An unexpected error occurred fetching questions: {e}", None
|
71 |
+
|
72 |
+
# 3. Run your Agent
|
73 |
+
results_log = []
|
74 |
+
answers_payload = []
|
75 |
+
print(f"Running agent on {len(questions_data)} questions...")
|
76 |
+
for item in questions_data:
|
77 |
+
task_id = item.get("task_id")
|
78 |
+
question_text = item.get("question")
|
79 |
+
if not task_id or question_text is None:
|
80 |
+
print(f"Skipping item with missing task_id or question: {item}")
|
81 |
+
continue
|
82 |
+
try:
|
83 |
+
submitted_answer = agent(question_text)
|
84 |
+
answers_payload.append({"task_id": task_id, "submitted_answer": submitted_answer})
|
85 |
+
results_log.append({"Task ID": task_id, "Question": question_text, "Submitted Answer": submitted_answer})
|
86 |
+
except Exception as e:
|
87 |
+
print(f"Error running agent on task {task_id}: {e}")
|
88 |
+
results_log.append({"Task ID": task_id, "Question": question_text, "Submitted Answer": f"AGENT ERROR: {e}"})
|
89 |
+
|
90 |
+
if not answers_payload:
|
91 |
+
print("Agent did not produce any answers to submit.")
|
92 |
+
return "Agent did not produce any answers to submit.", pd.DataFrame(results_log)
|
93 |
+
|
94 |
+
# 4. Prepare Submission
|
95 |
+
submission_data = {"username": username.strip(), "agent_code": agent_code, "answers": answers_payload}
|
96 |
+
status_update = f"Agent finished. Submitting {len(answers_payload)} answers for user '{username}'..."
|
97 |
+
print(status_update)
|
98 |
+
|
99 |
+
# 5. Submit
|
100 |
+
print(f"Submitting {len(answers_payload)} answers to: {submit_url}")
|
101 |
+
try:
|
102 |
+
response = requests.post(submit_url, json=submission_data, timeout=60)
|
103 |
+
response.raise_for_status()
|
104 |
+
result_data = response.json()
|
105 |
+
final_status = (
|
106 |
+
f"Submission Successful!\n"
|
107 |
+
f"User: {result_data.get('username')}\n"
|
108 |
+
f"Overall Score: {result_data.get('score', 'N/A')}% "
|
109 |
+
f"({result_data.get('correct_count', '?')}/{result_data.get('total_attempted', '?')} correct)\n"
|
110 |
+
f"Message: {result_data.get('message', 'No message received.')}"
|
111 |
+
)
|
112 |
+
print("Submission successful.")
|
113 |
+
results_df = pd.DataFrame(results_log)
|
114 |
+
return final_status, results_df
|
115 |
+
except requests.exceptions.HTTPError as e:
|
116 |
+
error_detail = f"Server responded with status {e.response.status_code}."
|
117 |
+
try:
|
118 |
+
error_json = e.response.json()
|
119 |
+
error_detail += f" Detail: {error_json.get('detail', e.response.text)}"
|
120 |
+
except requests.exceptions.JSONDecodeError:
|
121 |
+
error_detail += f" Response: {e.response.text[:500]}"
|
122 |
+
status_message = f"Submission Failed: {error_detail}"
|
123 |
+
print(status_message)
|
124 |
+
results_df = pd.DataFrame(results_log)
|
125 |
+
return status_message, results_df
|
126 |
+
except requests.exceptions.Timeout:
|
127 |
+
status_message = "Submission Failed: The request timed out."
|
128 |
+
print(status_message)
|
129 |
+
results_df = pd.DataFrame(results_log)
|
130 |
+
return status_message, results_df
|
131 |
+
except requests.exceptions.RequestException as e:
|
132 |
+
status_message = f"Submission Failed: Network error - {e}"
|
133 |
+
print(status_message)
|
134 |
+
results_df = pd.DataFrame(results_log)
|
135 |
+
return status_message, results_df
|
136 |
+
except Exception as e:
|
137 |
+
status_message = f"An unexpected error occurred during submission: {e}"
|
138 |
+
print(status_message)
|
139 |
+
results_df = pd.DataFrame(results_log)
|
140 |
+
return status_message, results_df
|
141 |
+
|
142 |
+
|
143 |
+
# --- Build Gradio Interface using Blocks ---
|
144 |
+
with gr.Blocks() as demo:
|
145 |
+
gr.Markdown("# Basic Agent Evaluation Runner")
|
146 |
+
gr.Markdown(
|
147 |
+
"""
|
148 |
+
**Instructions:**
|
149 |
+
|
150 |
+
1. Please clone this space, then modify the code to define your agent's logic, the tools, the necessary packages, etc ...
|
151 |
+
2. Log in to your Hugging Face account using the button below. This uses your HF username for submission.
|
152 |
+
3. Click 'Run Evaluation & Submit All Answers' to fetch questions, run your agent, submit answers, and see the score.
|
153 |
+
|
154 |
+
---
|
155 |
+
**Disclaimers:**
|
156 |
+
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).
|
157 |
+
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 seperate action or even to answer the questions in async.
|
158 |
+
"""
|
159 |
+
)
|
160 |
+
|
161 |
+
gr.LoginButton()
|
162 |
+
|
163 |
+
run_button = gr.Button("Run Evaluation & Submit All Answers")
|
164 |
+
|
165 |
+
status_output = gr.Textbox(label="Run Status / Submission Result", lines=5, interactive=False)
|
166 |
+
# Removed max_rows=10 from DataFrame constructor
|
167 |
+
results_table = gr.DataFrame(label="Questions and Agent Answers", wrap=True)
|
168 |
+
|
169 |
+
run_button.click(
|
170 |
+
fn=run_and_submit_all,
|
171 |
+
outputs=[status_output, results_table]
|
172 |
+
)
|
173 |
+
|
174 |
+
if __name__ == "__main__":
|
175 |
+
print("\n" + "-"*30 + " App Starting " + "-"*30)
|
176 |
+
# Check for SPACE_HOST and SPACE_ID at startup for information
|
177 |
+
space_host_startup = os.getenv("SPACE_HOST")
|
178 |
+
space_id_startup = os.getenv("SPACE_ID") # Get SPACE_ID at startup
|
179 |
+
|
180 |
+
if space_host_startup:
|
181 |
+
print(f"✅ SPACE_HOST found: {space_host_startup}")
|
182 |
+
print(f" Runtime URL should be: https://{space_host_startup}.hf.space")
|
183 |
+
else:
|
184 |
+
print("ℹ️ SPACE_HOST environment variable not found (running locally?).")
|
185 |
+
|
186 |
+
if space_id_startup: # Print repo URLs if SPACE_ID is found
|
187 |
+
print(f"✅ SPACE_ID found: {space_id_startup}")
|
188 |
+
print(f" Repo URL: https://huggingface.co/spaces/{space_id_startup}")
|
189 |
+
print(f" Repo Tree URL: https://huggingface.co/spaces/{space_id_startup}/tree/main")
|
190 |
+
else:
|
191 |
+
print("ℹ️ SPACE_ID environment variable not found (running locally?). Repo URL cannot be determined.")
|
192 |
+
|
193 |
+
print("-"*(60 + len(" App Starting ")) + "\n")
|
194 |
+
|
195 |
+
print("Launching Gradio Interface for Basic Agent Evaluation...")
|
196 |
demo.launch(debug=True, share=False)
|
requirements.txt
CHANGED
@@ -1,2 +1,2 @@
|
|
1 |
-
gradio
|
2 |
requests
|
|
|
1 |
+
gradio
|
2 |
requests
|