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Adding websearch to the agent. First test

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  1. .gitattributes +35 -35
  2. .python-version +1 -0
  3. README.md +14 -14
  4. app.py +193 -195
  5. pyproject.toml +16 -0
  6. requirements.txt +8 -2
  7. uv.lock +0 -0
.gitattributes CHANGED
@@ -1,35 +1,35 @@
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.python-version ADDED
@@ -0,0 +1 @@
 
 
1
+ 3.11
README.md CHANGED
@@ -1,15 +1,15 @@
1
- ---
2
- title: Template Final Assignment
3
- emoji: 🕵🏻‍♂️
4
- colorFrom: indigo
5
- colorTo: indigo
6
- sdk: gradio
7
- sdk_version: 5.25.2
8
- app_file: app.py
9
- pinned: false
10
- hf_oauth: true
11
- # optional, default duration is 8 hours/480 minutes. Max duration is 30 days/43200 minutes.
12
- hf_oauth_expiration_minutes: 480
13
- ---
14
-
15
  Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
 
1
+ ---
2
+ title: Template Final Assignment
3
+ emoji: 🕵🏻‍♂️
4
+ colorFrom: indigo
5
+ colorTo: indigo
6
+ sdk: gradio
7
+ sdk_version: 5.25.2
8
+ app_file: app.py
9
+ pinned: false
10
+ hf_oauth: true
11
+ # optional, default duration is 8 hours/480 minutes. Max duration is 30 days/43200 minutes.
12
+ hf_oauth_expiration_minutes: 480
13
+ ---
14
+
15
  Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
app.py CHANGED
@@ -1,196 +1,194 @@
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)
 
1
+ import os
2
+ import gradio as gr
3
+ import requests
4
+ import inspect
5
+ import pandas as pd
6
+
7
+ from agent.agent import zBottaAgent
8
+
9
+ # (Keep Constants as is)
10
+ # --- Constants ---
11
+ DEFAULT_API_URL = "https://agents-course-unit4-scoring.hf.space"
12
+ GEMINI_API_KEY = os.getenv("GEMINI_API_KEY")
13
+
14
+ def check_gemini_api_key():
15
+ if GEMINI_API_KEY:
16
+ print("✅ Gemini API key found in environment variables.")
17
+ else:
18
+ print("⚠️ Gemini API key not found. If your agent uses Gemini, please set the GEMINI_API_KEY environment variable.")
19
+
20
+ def run_and_submit_all( profile: gr.OAuthProfile | None):
21
+ """
22
+ Fetches all questions, runs the BasicAgent on them, submits all answers,
23
+ and displays the results.
24
+ """
25
+ # --- Determine HF Space Runtime URL and Repo URL ---
26
+ space_id = os.getenv("SPACE_ID") # Get the SPACE_ID for sending link to the code
27
+
28
+ if profile:
29
+ username= f"{profile.username}"
30
+ print(f"User logged in: {username}")
31
+ else:
32
+ print("User not logged in.")
33
+ return "Please Login to Hugging Face with the button.", None
34
+
35
+ api_url = DEFAULT_API_URL
36
+ questions_url = f"{api_url}/questions"
37
+ submit_url = f"{api_url}/submit"
38
+
39
+ # 1. Instantiate Agent ( modify this part to create your agent)
40
+ try:
41
+ agent = zBottaAgent()
42
+ except Exception as e:
43
+ print(f"Error instantiating agent: {e}")
44
+ return f"Error initializing agent: {e}", None
45
+ # 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)
46
+ agent_code = f"https://huggingface.co/spaces/{space_id}/tree/main"
47
+ print(agent_code)
48
+
49
+ # 2. Fetch Questions
50
+ print(f"Fetching questions from: {questions_url}")
51
+ try:
52
+ response = requests.get(questions_url, timeout=15)
53
+ response.raise_for_status()
54
+ questions_data = response.json()
55
+ if not questions_data:
56
+ print("Fetched questions list is empty.")
57
+ return "Fetched questions list is empty or invalid format.", None
58
+ print(f"Fetched {len(questions_data)} questions.")
59
+ except requests.exceptions.RequestException as e:
60
+ print(f"Error fetching questions: {e}")
61
+ return f"Error fetching questions: {e}", None
62
+ except requests.exceptions.JSONDecodeError as e:
63
+ print(f"Error decoding JSON response from questions endpoint: {e}")
64
+ print(f"Response text: {response.text[:500]}")
65
+ return f"Error decoding server response for questions: {e}", None
66
+ except Exception as e:
67
+ print(f"An unexpected error occurred fetching questions: {e}")
68
+ return f"An unexpected error occurred fetching questions: {e}", None
69
+
70
+ # 3. Run your Agent
71
+ results_log = []
72
+ answers_payload = []
73
+ print(f"Running agent on {len(questions_data)} questions...")
74
+ for item in questions_data:
75
+ task_id = item.get("task_id")
76
+ question_text = item.get("question")
77
+ if not task_id or question_text is None:
78
+ print(f"Skipping item with missing task_id or question: {item}")
79
+ continue
80
+ try:
81
+ submitted_answer = agent(question_text)
82
+ answers_payload.append({"task_id": task_id, "submitted_answer": submitted_answer})
83
+ results_log.append({"Task ID": task_id, "Question": question_text, "Submitted Answer": submitted_answer})
84
+ except Exception as e:
85
+ print(f"Error running agent on task {task_id}: {e}")
86
+ results_log.append({"Task ID": task_id, "Question": question_text, "Submitted Answer": f"AGENT ERROR: {e}"})
87
+
88
+ if not answers_payload:
89
+ print("Agent did not produce any answers to submit.")
90
+ return "Agent did not produce any answers to submit.", pd.DataFrame(results_log)
91
+
92
+ # 4. Prepare Submission
93
+ submission_data = {"username": username.strip(), "agent_code": agent_code, "answers": answers_payload}
94
+ status_update = f"Agent finished. Submitting {len(answers_payload)} answers for user '{username}'..."
95
+ print(status_update)
96
+
97
+ # 5. Submit
98
+ print(f"Submitting {len(answers_payload)} answers to: {submit_url}")
99
+ try:
100
+ response = requests.post(submit_url, json=submission_data, timeout=60)
101
+ response.raise_for_status()
102
+ result_data = response.json()
103
+ final_status = (
104
+ f"Submission Successful!\n"
105
+ f"User: {result_data.get('username')}\n"
106
+ f"Overall Score: {result_data.get('score', 'N/A')}% "
107
+ f"({result_data.get('correct_count', '?')}/{result_data.get('total_attempted', '?')} correct)\n"
108
+ f"Message: {result_data.get('message', 'No message received.')}"
109
+ )
110
+ print("Submission successful.")
111
+ results_df = pd.DataFrame(results_log)
112
+ return final_status, results_df
113
+ except requests.exceptions.HTTPError as e:
114
+ error_detail = f"Server responded with status {e.response.status_code}."
115
+ try:
116
+ error_json = e.response.json()
117
+ error_detail += f" Detail: {error_json.get('detail', e.response.text)}"
118
+ except requests.exceptions.JSONDecodeError:
119
+ error_detail += f" Response: {e.response.text[:500]}"
120
+ status_message = f"Submission Failed: {error_detail}"
121
+ print(status_message)
122
+ results_df = pd.DataFrame(results_log)
123
+ return status_message, results_df
124
+ except requests.exceptions.Timeout:
125
+ status_message = "Submission Failed: The request timed out."
126
+ print(status_message)
127
+ results_df = pd.DataFrame(results_log)
128
+ return status_message, results_df
129
+ except requests.exceptions.RequestException as e:
130
+ status_message = f"Submission Failed: Network error - {e}"
131
+ print(status_message)
132
+ results_df = pd.DataFrame(results_log)
133
+ return status_message, results_df
134
+ except Exception as e:
135
+ status_message = f"An unexpected error occurred during submission: {e}"
136
+ print(status_message)
137
+ results_df = pd.DataFrame(results_log)
138
+ return status_message, results_df
139
+
140
+
141
+ # --- Build Gradio Interface using Blocks ---
142
+ with gr.Blocks() as demo:
143
+ gr.Markdown("# Basic Agent Evaluation Runner")
144
+ gr.Markdown(
145
+ """
146
+ **Instructions:**
147
+
148
+ 1. Please clone this space, then modify the code to define your agent's logic, the tools, the necessary packages, etc ...
149
+ 2. Log in to your Hugging Face account using the button below. This uses your HF username for submission.
150
+ 3. Click 'Run Evaluation & Submit All Answers' to fetch questions, run your agent, submit answers, and see the score.
151
+
152
+ ---
153
+ **Disclaimers:**
154
+ 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).
155
+ 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.
156
+ """
157
+ )
158
+
159
+ gr.LoginButton()
160
+
161
+ run_button = gr.Button("Run Evaluation & Submit All Answers")
162
+
163
+ status_output = gr.Textbox(label="Run Status / Submission Result", lines=5, interactive=False)
164
+ # Removed max_rows=10 from DataFrame constructor
165
+ results_table = gr.DataFrame(label="Questions and Agent Answers", wrap=True)
166
+
167
+ run_button.click(
168
+ fn=run_and_submit_all,
169
+ outputs=[status_output, results_table]
170
+ )
171
+
172
+ if __name__ == "__main__":
173
+ print("\n" + "-"*30 + " App Starting " + "-"*30)
174
+ # Check for SPACE_HOST and SPACE_ID at startup for information
175
+ space_host_startup = os.getenv("SPACE_HOST")
176
+ space_id_startup = os.getenv("SPACE_ID") # Get SPACE_ID at startup
177
+
178
+ if space_host_startup:
179
+ print(f"✅ SPACE_HOST found: {space_host_startup}")
180
+ print(f" Runtime URL should be: https://{space_host_startup}.hf.space")
181
+ else:
182
+ print("ℹ️ SPACE_HOST environment variable not found (running locally?).")
183
+
184
+ if space_id_startup: # Print repo URLs if SPACE_ID is found
185
+ print(f"✅ SPACE_ID found: {space_id_startup}")
186
+ print(f" Repo URL: https://huggingface.co/spaces/{space_id_startup}")
187
+ print(f" Repo Tree URL: https://huggingface.co/spaces/{space_id_startup}/tree/main")
188
+ else:
189
+ print("ℹ️ SPACE_ID environment variable not found (running locally?). Repo URL cannot be determined.")
190
+
191
+ print("-"*(60 + len(" App Starting ")) + "\n")
192
+
193
+ print("Launching Gradio Interface for Basic Agent Evaluation...")
 
 
194
  demo.launch(debug=True, share=False)
pyproject.toml ADDED
@@ -0,0 +1,16 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ [project]
2
+ name = "hfagentscoursefinalassignment"
3
+ version = "0.1.0"
4
+ description = "Add your description here"
5
+ readme = "README.md"
6
+ requires-python = ">=3.11"
7
+ dependencies = [
8
+ "ddgs>=9.11.1",
9
+ "duckduckgo-search>=8.1.1",
10
+ "gradio>=6.8.0",
11
+ "langchain-community>=0.4.1",
12
+ "langchain-google-genai>=4.2.1",
13
+ "langchain-openai>=1.1.10",
14
+ "langgraph>=1.0.10",
15
+ "requests>=2.32.5",
16
+ ]
requirements.txt CHANGED
@@ -1,2 +1,8 @@
1
- gradio
2
- requests
 
 
 
 
 
 
 
1
+ gradio
2
+ requests
3
+ langgraph
4
+ langchain_openai
5
+ duckduckgo-search
6
+ langchain_community
7
+ langchain_google_genai
8
+ ddgs
uv.lock ADDED
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