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Update app.py
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app.py
CHANGED
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@@ -60,11 +60,16 @@ def submit(model_name, model_id, challenge, submission_id, paper_link, architect
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abs_path = Path(__file__).parent
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# Any pandas-compatible data
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-
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with gr.Blocks() as demo:
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gr.Markdown("""
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# MLSB 2024 Challenges
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""")
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@@ -73,7 +78,7 @@ with gr.Blocks() as demo:
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Evaluating Protein-Protein interaction prediction
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""")
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Leaderboard(
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value=
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select_columns=["Arch", "Model", "L_rms", "I_rms",
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"F_nat", "DOCKQ", "CAPRI"],
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search_columns=["model_name_for_query"],
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@@ -85,9 +90,9 @@ with gr.Blocks() as demo:
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Evaluating Protein-Ligand prediction
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""")
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Leaderboard(
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value=
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select_columns=["Arch", "Model", "
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"
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search_columns=["model_name_for_query"],
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hide_columns=["model_name_for_query",],
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filter_columns=["Arch"],
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abs_path = Path(__file__).parent
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# Any pandas-compatible data
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pinder_df = pd.read_json(str(abs_path / "leaderboard_pinder.json"))
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plinder_df = pd.read_json(str(abs_path / "leaderboard_plinder.json"))
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with gr.Blocks() as demo:
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gr.Markdown("""
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# MLSB 2024 Challenges
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Please find more details about the challenge on [mlsb.io/#challenge](https://www.mlsb.io/#challenge).
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This competition is run together with VantAI, NVidia, Huggingface & University of Basel.
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""")
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Evaluating Protein-Protein interaction prediction
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""")
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Leaderboard(
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value=pinder_df,
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select_columns=["Arch", "Model", "L_rms", "I_rms",
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"F_nat", "DOCKQ", "CAPRI"],
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search_columns=["model_name_for_query"],
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Evaluating Protein-Ligand prediction
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""")
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Leaderboard(
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value=plinder_df,
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select_columns=["Arch", "Model", "Mean lDDT-PLI", "Median RMSD",
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"Success Rate (% lDDT-PLI >= 0.7)"],
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search_columns=["model_name_for_query"],
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hide_columns=["model_name_for_query",],
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filter_columns=["Arch"],
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