Implement Siamese Network for ISIC 2020 Skin Lesion Classification – s4778251#284
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lgyts wants to merge 38 commits intoshakes76:topic-recognitionfrom
Open
Implement Siamese Network for ISIC 2020 Skin Lesion Classification – s4778251#284lgyts wants to merge 38 commits intoshakes76:topic-recognitionfrom
lgyts wants to merge 38 commits intoshakes76:topic-recognitionfrom
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This reverts commit 2ef33a3.
…y into predict.py
…ings across all files
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Please ignore the README uploaded to Gradescope — that version was incomplete and has been abandoned. |
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This is an initial inspection, no action is required at this pointWell Done!
Good design: design is fairly strong(1) Great work , Thanks |
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Marking
Marked as per the due date and changes after which aren't necessarily allowed to contribute to grade for fairness. |
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Hi team,
This pull request contains my solution to the Siamese classification problem (Hard Difficulty Task 9)
After training, the model achieves an average test accuracy of around 81%, with balanced precision and recall (≈ 0.80).
README.md – Comprehensive documentation of the entire project including dataset, preprocessing, training procedure, results, and discussion.
dataset.py – Handles the ISIC 2020 dataset: metadata loading, patient-grouped splitting, augmentation, and data loaders.
modules.py – Contains model architectures: SiameseEncoder (ResNet-50) and BinaryClassifier (4-layer MLP).
utils.py – Helper utilities for plotting, feature extraction, saving sample images, and ensuring reproducibility.
params.py – Centralized configuration for all hyperparameters, paths, and augmentations.
train.py – Trains both the Siamese encoder (Triplet Margin Loss) and classifier (CrossEntropyLoss).
predict.py – Loads trained models to evaluate the test set and generate confusion matrix and metrics.
.gitignore – Excludes generated weights and datasets for clean repository submission.
/images/ – Contains figures used in the README (loss curves, confusion matrix, input samples).