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| from evaluation import eval_by_dockqv2,eval_by_ost |
| import pandas as pd |
| import argparse |
| import os |
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|
| parser = argparse.ArgumentParser() |
| parser.add_argument( |
| "--targets_dir", required=False, default='./examples/targets', help="The dir with the targets files." |
| ) |
| parser.add_argument( |
| "--evaluation_dir", required=False,default='./examples/outputs/evaluation', help="The dir with the evaluation files.", |
| ) |
| parser.add_argument( |
| "--algorithm_name", required=False, default='Protenix', help="The name of the algorithm.", |
| ) |
| parser.add_argument( |
| "--ground_truth_dir", required=False, default='./examples/ground_truths', help="The dir with the ground truth files.", |
| ) |
|
|
| parser.add_argument( |
| "--targets", required=False, default= ["interface_protein_ligand","interface_antibody_antigen","interface_protein_dna", "monomer_protein"], nargs='+', help="targets to evaluate.", |
| ) |
| args = parser.parse_args() |
|
|
| evaluation_dir = os.path.join(args.evaluation_dir,args.algorithm_name) |
|
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| os.makedirs(os.path.join(evaluation_dir,'raw'), exist_ok=True) |
| target_types = args.targets |
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| prediction_summary_path = f'{evaluation_dir}/prediction_reference.csv' |
| prediction_summary_df = pd.read_csv(prediction_summary_path) |
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| |
| for target_type in target_types: |
| target_df_path = f'{args.targets_dir}/{target_type}.csv' |
| if not os.path.exists(target_df_path): |
| print(f"target_df_path is not exists for {target_type}") |
| continue |
| target_df = pd.read_csv(target_df_path) |
|
|
| target_df = pd.merge(target_df,prediction_summary_df, on='pdb_id', how='left') |
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| if target_type in ["interface_protein_protein","interface_antibody_antigen","interface_protein_peptide","interface_protein_ligand","interface_protein_dna","interface_protein_rna","monomer_dna","monomer_rna","monomer_protein"]: |
| eval_by_ost(target_df,target_type,evaluation_dir,args.ground_truth_dir) |
| |
| if target_type in ["interface_protein_dna","interface_protein_rna"]: |
| eval_by_dockqv2(target_df,target_type,evaluation_dir,args.ground_truth_dir) |