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import os | |
from email.utils import parseaddr | |
import gradio as gr | |
import pandas as pd | |
from datasets import load_dataset | |
from apscheduler.schedulers.background import BackgroundScheduler | |
from huggingface_hub import HfApi | |
# InfoStrings | |
from content import * | |
BALM_TOKEN = os.environ.get("BALM_TOKEN", None) | |
owner="clefourrier" # change to balm once possible | |
api = HfApi() | |
eval_results = {} | |
eval_dataframe = {} | |
for level in range(1, 4): | |
eval_results[level] = load_dataset(f"{owner}/BALM_ResultsLevel{level}", token=BALM_TOKEN, split="dev") | |
eval_dataframe[level] = pd.DataFrame(eval_results[level].remove_column("mail")) | |
def restart_space(): | |
api.restart_space(repo_id=f"{owner}/BALM_Leaderboard", token=BALM_TOKEN) | |
COLS = ["Model", "Organisation", "Reported accuracy ⬆️"] | |
TYPES = ["str", "str", "number",] | |
def add_new_eval( | |
level_of_dev: str, | |
model: str, | |
score: float, | |
organisation: str, | |
mail: str, | |
): | |
level = int(level_of_dev.split(" ")[-1]) | |
# Very basic email parsing | |
_, parsed_mail = parseaddr(mail) | |
if not "@" in parsed_mail: | |
valid_mail = "Please provide a valid email adress." | |
return f"<p style='color: orange; font-size: 20px; text-align: center;'>{valid_mail}</p>" | |
print("Adding new eval") | |
# Check if the combination model/org already exists and prints a warning message if yes | |
if model.lower() in set(eval_results[level]["model"]) and organisation.lower() in set(eval_results[level]["organisation"]): | |
duplicate_request_message = "This model has been already submitted." | |
return f"<p style='color: orange; font-size: 20px; text-align: center;'>{duplicate_request_message}</p>" | |
# Actual submission | |
eval_entry = { | |
"model": model, | |
"score": score, | |
"organisation": organisation, | |
"mail": mail, | |
} | |
eval_results[level].add_item(eval_entry) | |
success_message = f"Model {model} submitted by {organisation}." | |
return f"<p style='color: green; font-size: 20px; text-align: center;'>{success_message}</p>" | |
def refresh(): | |
eval_results = {} | |
eval_dataframe = {} | |
for level in range(1, 4): | |
eval_results[level] = load_dataset(f"{owner}/BALM_ResultsLevel{level}", token=BALM_TOKEN, split="dev") | |
eval_dataframe[level] = pd.DataFrame(eval_results[level].remove_column("mail")) | |
return eval_dataframe[1], eval_dataframe[2], eval_dataframe[3] | |
custom_css = """ | |
#changelog-text { | |
font-size: 16px !important; | |
} | |
#changelog-text h2 { | |
font-size: 18px !important; | |
} | |
.markdown-text { | |
font-size: 16px !important; | |
} | |
#citation-button span { | |
font-size: 16px !important; | |
} | |
#citation-button textarea { | |
font-size: 16px !important; | |
} | |
#citation-button > label > button { | |
margin: 6px; | |
transform: scale(1.3); | |
} | |
""" | |
demo = gr.Blocks(css=custom_css) | |
with demo: | |
gr.HTML(TITLE) | |
gr.Markdown(INTRODUCTION_TEXT, elem_classes="markdown-text") | |
with gr.Row(): | |
with gr.Column(): | |
with gr.Accordion("📙 Citation", open=False): | |
citation_button = gr.Textbox( | |
value=CITATION_BUTTON_TEXT, | |
label=CITATION_BUTTON_LABEL, | |
elem_id="citation-button", | |
).style(show_copy_button=True) | |
with gr.Column(): | |
with gr.Accordion("✨ CHANGELOG", open=False): | |
changelog = gr.Markdown(CHANGELOG_TEXT, elem_id="changelog-text") | |
with gr.Tab("Results: Level 1"): | |
with gr.Tab("Results on Dev Set"): | |
leaderboard_table_1 = gr.components.Dataframe( | |
value=eval_dataframe[1], headers=COLS, datatype=TYPES, max_rows=20 | |
) | |
with gr.Tab("Results on Test Set"): | |
gr.Textbox(value="The test set is currently private! Come back when performances on the dev set increased!") | |
with gr.Tab("Results: Level 2"): | |
with gr.Tab("Results on Dev Set"): | |
leaderboard_table_2 = gr.components.Dataframe( | |
value=eval_dataframe[2], headers=COLS, datatype=TYPES, max_rows=20 | |
) | |
with gr.Tab("Results on Test Set"): | |
gr.Textbox(value="The test set is currently private! Come back when performances on the dev set increased!") | |
with gr.Tab("Results: Level 3"): | |
with gr.Tab("Results on Dev Set"): | |
leaderboard_table_3 = gr.components.Dataframe( | |
value=eval_dataframe[3], headers=COLS, datatype=TYPES, max_rows=20 | |
) | |
with gr.Tab("Results on Test Set"): | |
gr.Textbox(value="The test set is currently private! Come back when performances on the dev set increased!") | |
refresh_button = gr.Button("Refresh") | |
refresh_button.click( | |
refresh, | |
inputs=[], | |
outputs=[ | |
eval_dataframe[1], | |
eval_dataframe[2], | |
eval_dataframe[3], | |
], | |
) | |
with gr.Accordion("Submit a new model for evaluation"): | |
#with gr.Row(): | |
with gr.Column(): | |
level_of_dev = gr.Radio(["Level 1", "Level 2", "Level 3"], value="Level 1", label="Dev set") | |
model_name_textbox = gr.Textbox(label="Model name") | |
score = gr.Textbox(label="Score") | |
organisation = gr.Textbox(label="Organisation") | |
mail = gr.Textbox(label="Contact email") | |
submit_button = gr.Button("Submit Eval") | |
submission_result = gr.Markdown() | |
submit_button.click( | |
add_new_eval, | |
[ | |
level_of_dev, | |
model_name_textbox, | |
score, | |
organisation, | |
], | |
submission_result, | |
) | |
scheduler = BackgroundScheduler() | |
scheduler.add_job(restart_space, "interval", seconds=3600) | |
scheduler.start() | |
demo.launch() | |