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Update app.py
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app.py
CHANGED
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@@ -72,20 +72,19 @@ with block:
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choices=metric_names, label="Select Metrics for Leaderboard", value=metric_names, interactive=True
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)
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baseline_datatype = ['markdown'] + ['number'] * len(metric_names)
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# Update leaderboard when method/metric selection changes
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leaderboard_method_selector.change(
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@@ -101,9 +100,8 @@ with block:
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with gr.Row(variant='panel', show_progress=True):
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benchmark_type_selector = gr.Dropdown(choices=list(benchmark_specific_metrics.keys()), label="Select Benchmark Type")
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with gr.Row():
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# Dynamic selectors
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dataset_selector = gr.Dropdown(choices=[], label="Select Dataset", visible=False)
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single_metric_selector = gr.Dropdown(choices=[], label="Select Metric", visible=False)
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# CheckboxGroup for methods
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method_selector = gr.CheckboxGroup(choices=method_names, label="Select methods to visualize", interactive=True, value=method_names)
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# Button to draw the plot for the selected benchmark
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with gr.Row():
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plot_button = gr.Button("Plot")
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plot_output = gr.Image(label="Plot")
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# Update selectors when benchmark type changes
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benchmark_type_selector.change(
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choices=metric_names, label="Select Metrics for Leaderboard", value=metric_names, interactive=True
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)
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# Display the filtered leaderboard
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baseline_value = get_baseline_df(method_names, metric_names)
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baseline_header = ["method_name"] + metric_names
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baseline_datatype = ['markdown'] + ['number'] * len(metric_names)
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data_component = gr.components.Dataframe(
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value=baseline_value,
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headers=baseline_header,
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type="pandas",
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datatype=baseline_datatype,
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interactive=False,
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visible=True,
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)
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# Update leaderboard when method/metric selection changes
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leaderboard_method_selector.change(
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with gr.Row(variant='panel', show_progress=True):
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# Dropdown for benchmark type
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benchmark_type_selector = gr.Dropdown(choices=list(benchmark_specific_metrics.keys()), label="Select Benchmark Type")
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with gr.Row():
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# Dynamic selectors
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dataset_selector = gr.Dropdown(choices=[], label="Select Dataset", visible=False)
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single_metric_selector = gr.Dropdown(choices=[], label="Select Metric", visible=False)
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method_selector = gr.CheckboxGroup(choices=method_names, label="Select methods to visualize", interactive=True, value=method_names)
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# Button to draw the plot for the selected benchmark
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with gr.Row():
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plot_button = gr.Button("Plot")
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plot_output = gr.Image(label="Plot")
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# Update selectors when benchmark type changes
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benchmark_type_selector.change(
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