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README.md
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@@ -21,24 +21,22 @@ The model also predicts the chest X-ray view (AP, PA, lateral), patient age, and
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The [CheXpert](https://stanfordmlgroup.github.io/competitions/chexpert/) (small version) and [NIH Chest X-ray](https://nihcc.app.box.com/v/ChestXray-NIHCC) datasets were used to train the model.
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Segmentation masks were obtained from the CheXmask [dataset](https://physionet.org/content/chexmask-cxr-segmentation-data/0.4/) ([paper](https://www.nature.com/articles/s41597-024-03358-1)).
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The final dataset comprised 335,516 images from 96,385 patients and was split into 80% training/20% validation. A holdout test set was not used since minimal tuning was performed.
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Validation performance as follows:
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```
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Segmentation (Dice similarity coefficient):
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Right Lung: 0.
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Left Lung: 0.
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Heart: 0.
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Age Prediction:
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Mean Absolute Error: 5.
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Classification
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View:
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PA: 0.998
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Lateral: 1.000
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Female: 0.999
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```
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To use the model:
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The [CheXpert](https://stanfordmlgroup.github.io/competitions/chexpert/) (small version) and [NIH Chest X-ray](https://nihcc.app.box.com/v/ChestXray-NIHCC) datasets were used to train the model.
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Segmentation masks were obtained from the CheXmask [dataset](https://physionet.org/content/chexmask-cxr-segmentation-data/0.4/) ([paper](https://www.nature.com/articles/s41597-024-03358-1)).
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The final dataset comprised 335,516 images from 96,385 patients and was split into 80% training/20% validation. A holdout test set was not used since minimal tuning was performed.
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The view classifier was trained only on CheXpert images (NIH images excluded from loss function), given that lateral radiographs are only present in CheXpert.
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This is to avoid unwanted bias in the model, which can occur if one class originates only from a single dataset.
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Validation performance as follows:
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```
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Segmentation (Dice similarity coefficient):
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Right Lung: 0.957
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Left Lung: 0.948
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Heart: 0.943
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Age Prediction:
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Mean Absolute Error: 5.25 years
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Classification:
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View (AP, PA, lateral): 99.42% accuracy
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Female: 0.999 AUC
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```
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To use the model:
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