Spaces:
Sleeping
Sleeping
Alina Lozovskaya
commited on
Commit
·
7ccf9d4
1
Parent(s):
a8fcdeb
Simplify Setup tab
Browse files- yourbench_space/app.py +52 -100
- yourbench_space/config.py +42 -40
- yourbench_space/utils.py +24 -16
yourbench_space/app.py
CHANGED
@@ -1,16 +1,15 @@
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import os
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import sys
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import gradio as gr
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from loguru import logger
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from huggingface_hub import
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from yourbench_space.config import
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from yourbench_space.utils import (
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CONFIG_PATH,
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UPLOAD_DIRECTORY,
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BASE_API_URLS,
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AVAILABLE_MODELS,
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DEFAULT_MODEL,
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SubprocessManager,
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save_files,
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)
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@@ -23,21 +22,33 @@ logger.add(sys.stderr, level="INFO")
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command = ["uv", "run", "yourbench", f"--config={CONFIG_PATH}"]
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manager = SubprocessManager(command)
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def prepare_task(oauth_token: gr.OAuthToken | None, model_token: str):
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new_env = os.environ.copy()
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# Override env token, when running in gradio space
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if oauth_token:
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new_env["HF_TOKEN"] = oauth_token.token
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new_env["MODEL_API_KEY"] = model_token
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manager.start_process(custom_env=new_env)
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-
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def update_hf_org_dropdown(oauth_token: gr.OAuthToken | None):
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if oauth_token is None:
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print(
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"Please, deploy this on Spaces and log in to view the list of available organizations"
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)
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return gr.Dropdown([], label="Organization")
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try:
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@@ -46,108 +57,49 @@ def update_hf_org_dropdown(oauth_token: gr.OAuthToken | None):
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user_name = user_info.get("name", "Unknown User")
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org_names.insert(0, user_name)
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return gr.Dropdown(org_names, value=user_name, label="Organization")
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-
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except Exception as e:
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print(f"Error retrieving user info: {e}")
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return gr.Dropdown([], label="Organization")
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config_output = gr.Code(label="Generated Config", language="yaml")
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model_name = gr.Dropdown(
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label="Model Name",
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value=DEFAULT_MODEL,
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choices=AVAILABLE_MODELS,
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allow_custom_value=True,
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)
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base_url = gr.Textbox(
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label="Model API Base URL",
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value=BASE_API_URLS["huggingface"],
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info="Use a custom API base URL for Hugging Face Inference Endpoints",
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)
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with gr.Blocks() as app:
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gr.Markdown("## YourBench
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with gr.Row():
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login_btn = gr.LoginButton()
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with gr.Tab("
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with gr.
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-
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-
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allow_custom_value=True,
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)
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app.load(update_hf_org_dropdown, inputs=None, outputs=hf_org_dropdown)
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hf_dataset_prefix = gr.Textbox(
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label="Dataset Prefix",
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value="yourbench",
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info="Prefix applied to all datasets",
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)
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private_dataset = gr.Checkbox(
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label="Private Dataset",
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value=True,
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info="Create private datasets (recommended by default)",
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)
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with gr.Accordion("Model"):
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model_name.render()
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provider = gr.Radio(
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["huggingface", "openrouter", "openai"],
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value="huggingface",
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label="Inference Provider",
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)
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def set_base_url(provider):
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return gr.Textbox(
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label="Model API Base URL", value=BASE_API_URLS.get(provider, "")
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)
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provider.change(fn=set_base_url, inputs=provider, outputs=base_url)
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model_api_key = gr.Textbox(label="Model API Key", type="password")
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base_url.render()
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max_concurrent_requests = gr.Radio(
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[8, 16, 32], value=16, label="Max Concurrent Requests"
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)
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preview_button = gr.Button("Generate New Config")
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preview_button.click(
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generate_base_config,
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inputs=[
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hf_org_dropdown,
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hf_dataset_prefix,
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model_name,
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provider,
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base_url,
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model_api_key,
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max_concurrent_requests,
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private_dataset,
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],
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outputs=config_output,
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)
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)
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-
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)
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output = gr.Textbox(label="Log")
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file_input.upload(save_files, file_input, output)
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with gr.Tab("Run Generation"):
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log_output = gr.Code(
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label="Log Output", language=None, lines=20, interactive=False
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)
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log_timer = gr.Timer(0.05, active=True)
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log_timer.tick(manager.read_and_get_output, outputs=log_output)
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@@ -158,7 +110,7 @@ with gr.Blocks() as app:
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with gr.Row():
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start_button = gr.Button("Start Task")
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start_button.click(prepare_task, inputs=[
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stop_button = gr.Button("Stop Task")
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stop_button.click(manager.stop_process)
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@@ -166,4 +118,4 @@ with gr.Blocks() as app:
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kill_button = gr.Button("Kill Task")
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kill_button.click(manager.kill_process)
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app.launch()
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import os
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import sys
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import time # Needed for file existence check
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import gradio as gr
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import yaml
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from loguru import logger
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from huggingface_hub import whoami
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from yourbench_space.config import generate_and_save_config
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from yourbench_space.utils import (
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CONFIG_PATH,
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UPLOAD_DIRECTORY,
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SubprocessManager,
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save_files,
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)
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command = ["uv", "run", "yourbench", f"--config={CONFIG_PATH}"]
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manager = SubprocessManager(command)
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def generate_and_return(hf_org, hf_prefix):
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"""Handles config generation and validates file existence before enabling download"""
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generate_and_save_config(hf_org, hf_prefix) # No need to store the return value
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# Wait until the config file is actually created
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for _ in range(5):
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if CONFIG_PATH.exists():
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break
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time.sleep(0.5)
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if CONFIG_PATH.exists():
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return "✅ Config saved!", gr.update(value=str(CONFIG_PATH), visible=True, interactive=True)
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else:
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return "❌ Config generation failed.", gr.update(visible=False, interactive=False)
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def prepare_task(oauth_token: gr.OAuthToken | None, model_token: str):
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"""Prepares and starts the subprocess with environment variables."""
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new_env = os.environ.copy()
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if oauth_token:
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new_env["HF_TOKEN"] = oauth_token.token
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new_env["MODEL_API_KEY"] = model_token
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manager.start_process(custom_env=new_env)
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def update_hf_org_dropdown(oauth_token: gr.OAuthToken | None):
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"""Updates the dropdown with the user's Hugging Face organizations"""
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if oauth_token is None:
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print("Please deploy this on Spaces and log in to view the list of available organizations")
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return gr.Dropdown([], label="Organization")
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try:
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user_name = user_info.get("name", "Unknown User")
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org_names.insert(0, user_name)
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return gr.Dropdown(org_names, value=user_name, label="Organization")
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except Exception as e:
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print(f"Error retrieving user info: {e}")
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return gr.Dropdown([], label="Organization")
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def enable_button(files):
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"""Enables the button if files are uploaded"""
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return gr.update(interactive=bool(files))
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with gr.Blocks() as app:
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gr.Markdown("## YourBench Setup")
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with gr.Row():
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login_btn = gr.LoginButton()
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with gr.Tab("Setup"):
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with gr.Row():
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with gr.Accordion("Hugging Face Settings"):
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hf_org_dropdown = gr.Dropdown(choices=[], label="Organization", allow_custom_value=True)
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app.load(update_hf_org_dropdown, inputs=None, outputs=hf_org_dropdown)
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hf_dataset_prefix = gr.Textbox(label="Dataset Prefix", value="yourbench", info="Prefix applied to all datasets")
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with gr.Accordion("Upload documents"):
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file_input = gr.File(label="Upload text files", file_count="multiple", file_types=[".txt", ".md", ".html"])
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output = gr.Textbox(label="Log")
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file_input.upload(lambda files: save_files([file.name for file in files]), file_input, output)
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preview_button = gr.Button("Generate New Config", interactive=False)
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log_message = gr.Textbox(label="Log Message", visible=True)
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download_button = gr.File(label="Download Config", visible=False, interactive=False)
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file_input.change(enable_button, inputs=file_input, outputs=preview_button)
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preview_button.click(
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generate_and_return,
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inputs=[hf_org_dropdown, hf_dataset_prefix],
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outputs=[log_message, download_button],
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)
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with gr.Tab("Run Generation"):
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log_output = gr.Code(label="Log Output", language=None, lines=20, interactive=False)
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log_timer = gr.Timer(0.05, active=True)
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log_timer.tick(manager.read_and_get_output, outputs=log_output)
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with gr.Row():
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start_button = gr.Button("Start Task")
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start_button.click(prepare_task, inputs=[hf_org_dropdown])
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stop_button = gr.Button("Stop Task")
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stop_button.click(manager.stop_process)
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kill_button = gr.Button("Kill Task")
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kill_button.click(manager.kill_process)
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app.launch(allowed_paths=["/app"])
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yourbench_space/config.py
CHANGED
@@ -1,49 +1,43 @@
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import yaml
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from yourbench_space.utils import CONFIG_PATH
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def generate_base_config(
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model_name,
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provider,
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base_url,
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model_api_key,
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max_concurrent_requests,
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private_dataset,
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):
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config = {
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"hf_configuration": {
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"token": "$HF_TOKEN",
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"private":
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"hf_organization": hf_org,
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"hf_dataset_name":
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},
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"model_list": [
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{
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"model_name":
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"provider":
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"base_url":
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"api_key": "$
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"max_concurrent_requests":
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}
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],
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"model_roles": {
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"ingestion": [
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"summarization": [
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"single_shot_question_generation": [
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"multi_hop_question_generation": [
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"answer_generation": [
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"judge_answers": [
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},
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"pipeline": {
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"ingestion": {
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"source_documents_dir": "/app/uploaded_files",
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"output_dir": "/app/ingested",
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"run": True
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},
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"upload_ingest_to_hub": {
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"source_documents_dir": "/app/ingested",
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"run": True
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},
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"summarization": {"run": True},
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"chunking": {
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@@ -52,34 +46,42 @@ def generate_base_config(
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"l_max_tokens": 128,
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"tau_threshold": 0.3,
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"h_min": 2,
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"h_max": 4
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},
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"run": True
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},
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"single_shot_question_generation": {
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"diversification_seed": "24 year old adult",
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"run": True
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},
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"multi_hop_question_generation": {"run": True},
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"answer_generation": {
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"question_type": "single_shot",
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"run": True,
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"strategies": [
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{"name": "zeroshot", "prompt": "ZEROSHOT_QA_USER_PROMPT", "model_name":
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{"name": "gold", "prompt": "GOLD_QA_USER_PROMPT", "model_name":
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]
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},
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"judge_answers": {
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"run": True,
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"comparing_strategies": [["zeroshot", "gold"]],
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"chunk_column_index": 0,
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"random_seed": 42
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}
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}
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}
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return yaml.dump(config, sort_keys=False)
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def
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with open(CONFIG_PATH, "w") as file:
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return
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import yaml
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from loguru import logger
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from yourbench_space.utils import CONFIG_PATH
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def generate_base_config(hf_org, hf_prefix):
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"""Creates the base config dictionary"""
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return {
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"hf_configuration": {
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"token": "$HF_TOKEN",
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"private": True,
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"hf_organization": hf_org,
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"hf_dataset_name": hf_prefix
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},
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"local_dataset_dir": "results/",
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"model_list": [
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{
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"model_name": "meta-llama/Llama-3.3-70B-Instruct",
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"provider": "huggingface",
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"base_url": "https://jsq69lxgkhvpnliw.us-east-1.aws.endpoints.huggingface.cloud",
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"api_key": "$HF_TOKEN",
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"max_concurrent_requests": 16
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}
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],
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"model_roles": {
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"ingestion": ["meta-llama/Llama-3.3-70B-Instruct"],
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"summarization": ["meta-llama/Llama-3.3-70B-Instruct"],
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"single_shot_question_generation": ["meta-llama/Llama-3.3-70B-Instruct"],
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"multi_hop_question_generation": ["meta-llama/Llama-3.3-70B-Instruct"],
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"answer_generation": ["meta-llama/Llama-3.3-70B-Instruct"],
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"judge_answers": ["meta-llama/Llama-3.3-70B-Instruct"]
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},
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"pipeline": {
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"ingestion": {
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"source_documents_dir": "/app/uploaded_files",
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"output_dir": "/app/ingested",
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"run": True
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},
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"upload_ingest_to_hub": {
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"source_documents_dir": "/app/ingested",
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"run": True
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},
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"summarization": {"run": True},
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"chunking": {
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"l_max_tokens": 128,
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"tau_threshold": 0.3,
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"h_min": 2,
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"h_max": 4
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},
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"run": True
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52 |
},
|
53 |
"single_shot_question_generation": {
|
54 |
"diversification_seed": "24 year old adult",
|
55 |
+
"run": True
|
56 |
},
|
57 |
"multi_hop_question_generation": {"run": True},
|
58 |
"answer_generation": {
|
59 |
"question_type": "single_shot",
|
60 |
"run": True,
|
61 |
"strategies": [
|
62 |
+
{"name": "zeroshot", "prompt": "ZEROSHOT_QA_USER_PROMPT", "model_name": "meta-llama/Llama-3.3-70B-Instruct"},
|
63 |
+
{"name": "gold", "prompt": "GOLD_QA_USER_PROMPT", "model_name": "meta-llama/Llama-3.3-70B-Instruct"}
|
64 |
+
]
|
65 |
},
|
66 |
"judge_answers": {
|
67 |
"run": True,
|
68 |
"comparing_strategies": [["zeroshot", "gold"]],
|
69 |
"chunk_column_index": 0,
|
70 |
+
"random_seed": 42
|
71 |
+
}
|
72 |
+
}
|
73 |
}
|
|
|
74 |
|
75 |
+
def save_yaml_file(config):
|
76 |
+
"""Saves the given config dictionary to a YAML file"""
|
77 |
with open(CONFIG_PATH, "w") as file:
|
78 |
+
yaml.dump(config, file, default_flow_style=False, sort_keys=False)
|
79 |
+
return CONFIG_PATH
|
80 |
+
|
81 |
+
def generate_and_save_config(hf_org, hf_prefix):
|
82 |
+
"""Generates and saves the YAML configuration file"""
|
83 |
+
logger.debug(f"Generating config with org: {hf_org}, prefix: {hf_prefix}")
|
84 |
+
config = generate_base_config(hf_org, hf_prefix)
|
85 |
+
file_path = save_yaml_file(config)
|
86 |
+
logger.success(f"Config saved at: {file_path}")
|
87 |
+
return file_path
|
yourbench_space/utils.py
CHANGED
@@ -4,26 +4,34 @@ import pathlib
|
|
4 |
import shutil
|
5 |
from loguru import logger
|
6 |
import subprocess
|
|
|
7 |
|
8 |
UPLOAD_DIRECTORY = pathlib.Path("/app/uploaded_files")
|
9 |
CONFIG_PATH = pathlib.Path("/app/yourbench_config.yml")
|
10 |
|
11 |
-
|
12 |
-
|
13 |
-
"meta-llama/Llama-3.3-70B-Instruct",
|
14 |
-
]
|
15 |
-
DEFAULT_MODEL = AVAILABLE_MODELS[0]
|
16 |
|
17 |
-
|
18 |
-
"
|
19 |
-
|
20 |
-
"openai": "https://api.openai.com/v1/",
|
21 |
-
}
|
22 |
|
23 |
-
|
24 |
-
|
25 |
-
|
|
|
26 |
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
27 |
|
28 |
class SubprocessManager:
|
29 |
def __init__(self, command):
|
@@ -51,7 +59,7 @@ class SubprocessManager:
|
|
51 |
logger.info("Started the process")
|
52 |
|
53 |
def read_and_get_output(self):
|
54 |
-
"""Read available subprocess output and return the captured output
|
55 |
if self.process and self.process.stdout:
|
56 |
try:
|
57 |
while True:
|
@@ -76,7 +84,7 @@ class SubprocessManager:
|
|
76 |
#return exit_code
|
77 |
|
78 |
def kill_process(self):
|
79 |
-
"""Forcefully kill the subprocess
|
80 |
if not self.is_running():
|
81 |
logger.info("Process is not running")
|
82 |
return
|
@@ -87,5 +95,5 @@ class SubprocessManager:
|
|
87 |
#return exit_code
|
88 |
|
89 |
def is_running(self):
|
90 |
-
"""Check if the subprocess is still running
|
91 |
return self.process and self.process.poll() is None
|
|
|
4 |
import shutil
|
5 |
from loguru import logger
|
6 |
import subprocess
|
7 |
+
from typing import List
|
8 |
|
9 |
UPLOAD_DIRECTORY = pathlib.Path("/app/uploaded_files")
|
10 |
CONFIG_PATH = pathlib.Path("/app/yourbench_config.yml")
|
11 |
|
12 |
+
# Ensure the upload directory exists
|
13 |
+
UPLOAD_DIRECTORY.mkdir(parents=True, exist_ok=True)
|
|
|
|
|
|
|
14 |
|
15 |
+
def save_files(files: List[pathlib.Path]) -> str:
|
16 |
+
"""Save uploaded files to the UPLOAD_DIRECTORY safely"""
|
17 |
+
saved_paths = []
|
|
|
|
|
18 |
|
19 |
+
for file in files:
|
20 |
+
try:
|
21 |
+
source_path = pathlib.Path(file)
|
22 |
+
destination_path = UPLOAD_DIRECTORY / source_path.name
|
23 |
|
24 |
+
if not source_path.exists():
|
25 |
+
print(f"File not found: {source_path}")
|
26 |
+
continue # Skip missing files
|
27 |
+
|
28 |
+
shutil.move(str(source_path), str(destination_path))
|
29 |
+
saved_paths.append(str(destination_path))
|
30 |
+
|
31 |
+
except Exception as e:
|
32 |
+
print(f"Error moving file {file}: {e}")
|
33 |
+
|
34 |
+
return f"Files saved to: {', '.join(saved_paths)}" if saved_paths else "No files were saved"
|
35 |
|
36 |
class SubprocessManager:
|
37 |
def __init__(self, command):
|
|
|
59 |
logger.info("Started the process")
|
60 |
|
61 |
def read_and_get_output(self):
|
62 |
+
"""Read available subprocess output and return the captured output"""
|
63 |
if self.process and self.process.stdout:
|
64 |
try:
|
65 |
while True:
|
|
|
84 |
#return exit_code
|
85 |
|
86 |
def kill_process(self):
|
87 |
+
"""Forcefully kill the subprocess"""
|
88 |
if not self.is_running():
|
89 |
logger.info("Process is not running")
|
90 |
return
|
|
|
95 |
#return exit_code
|
96 |
|
97 |
def is_running(self):
|
98 |
+
"""Check if the subprocess is still running"""
|
99 |
return self.process and self.process.poll() is None
|