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import json | |
import gradio as gr | |
import pandas as pd | |
from huggingface_hub import HfFileSystem | |
RESULTS_DATASET_ID = "datasets/open-llm-leaderboard/results" | |
fs = HfFileSystem() | |
def fetch_result_paths(): | |
paths = fs.glob(f"{RESULTS_DATASET_ID}/**/**/*.json") | |
return paths | |
def filter_latest_result_path_per_model(paths): | |
from collections import defaultdict | |
d = defaultdict(list) | |
for path in paths: | |
model_id, _ = path[len(RESULTS_DATASET_ID) +1:].rsplit("/", 1) | |
d[model_id].append(path) | |
return {model_id: max(paths) for model_id, paths in d.items()} | |
def get_result_path_from_model(model_id, result_path_per_model): | |
return result_path_per_model[model_id] | |
def load_result(result_path) -> pd.DataFrame: | |
with fs.open(result_path, "r") as f: | |
data = json.load(f) | |
model_name = data.get("model_name", "Model") | |
df = pd.json_normalize([data]) | |
return df.iloc[0].rename_axis("Parameters").rename(model_name).to_frame() # .reset_index() | |
def render_result_1(model_id, results): | |
result_path = get_result_path_from_model(model_id, latest_result_path_per_model) | |
result = load_result(result_path) | |
return pd.concat([result, results.iloc[:, [0, 2]].set_index("Parameters")], axis=1).reset_index() | |
def render_result_2(model_id, results): | |
result_path = get_result_path_from_model(model_id, latest_result_path_per_model) | |
result = load_result(result_path) | |
return pd.concat([results.iloc[:, [0, 1]].set_index("Parameters"), result], axis=1).reset_index() | |
# if __name__ == "__main__": | |
latest_result_path_per_model = filter_latest_result_path_per_model(fetch_result_paths()) | |
with gr.Blocks(fill_height=True) as demo: | |
gr.HTML("<h1 style='text-align: center;'>Compare Results of the 🤗 Open LLM Leaderboard</h1>") | |
gr.HTML("<h3 style='text-align: center;'>Select 2 results to load and compare</h3>") | |
with gr.Row(): | |
with gr.Column(): | |
model_id_1 = gr.Dropdown(choices=list(latest_result_path_per_model.keys()), label="Results") | |
load_btn_1 = gr.Button("Load") | |
with gr.Column(): | |
model_id_2 = gr.Dropdown(choices=list(latest_result_path_per_model.keys()), label="Results") | |
load_btn_2 = gr.Button("Load") | |
with gr.Row(): | |
compared_results = gr.Dataframe( | |
label="Results", | |
headers=["Parameters", "Result-1", "Result-2"], | |
interactive=False, | |
column_widths=["30%", "30%", "30%"], | |
wrap=True | |
) | |
load_btn_1.click( | |
fn=render_result_1, | |
inputs=[model_id_1, compared_results], | |
outputs=compared_results, | |
) | |
load_btn_2.click( | |
fn=render_result_2, | |
inputs=[model_id_2, compared_results], | |
outputs=compared_results, | |
) | |
demo.launch() | |