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| # config/config.yaml | |
| artifacts_root: artifacts | |
| data_ingestion: | |
| root_dir: artifacts/data_ingestion | |
| source_kaggle_dataset_id: "paultimothymooney/chest-xray-pneumonia" | |
| unzip_dir: artifacts/data_ingestion/ | |
| # We will create these three files now | |
| train_df_path: artifacts/data_ingestion/train_df.csv | |
| test_df_path: artifacts/data_ingestion/test_df.csv | |
| val_df_path: artifacts/data_ingestion/val_df.csv | |
| data_transformation: | |
| root_dir: artifacts/data_transformation | |
| # We now have three sources | |
| train_data_path: artifacts/data_ingestion/train_df.csv | |
| test_data_path: artifacts/data_ingestion/test_df.csv | |
| val_data_path: artifacts/data_ingestion/val_df.csv | |
| # And will create three outputs | |
| train_dataset_path: artifacts/data_transformation/train_dataset | |
| test_dataset_path: artifacts/data_transformation/test_dataset | |
| val_dataset_path: artifacts/data_transformation/val_dataset | |
| model_training: | |
| root_dir: artifacts/model_training | |
| trained_model_path: artifacts/model_training/model | |
| model_name: "google/vit-base-patch16-224-in21k" | |
| # We'll use the validation set for evaluation during training | |
| train_dataset_path: artifacts/data_transformation/train_dataset | |
| val_dataset_path: artifacts/data_transformation/val_dataset | |
| model_evaluation: | |
| root_dir: artifacts/model_evaluation | |
| model_path: artifacts/model_training/model | |
| # Final evaluation is done on the unseen test set | |
| test_dataset_path: artifacts/data_transformation/test_dataset | |
| metrics_file_name: artifacts/model_evaluation/metrics.json | |
| mlflow_uri: "https://dagshub.com/AlyyanAhmed21/Chest-X-ray-Pneumonia-Detection-with-ViT.mlflow" |