HipMRI Study Segmentation with an Improved 2D UNet (Task 3) | s4744546#273
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baulch-m wants to merge 27 commits intoshakes76:topic-recognitionfrom
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HipMRI Study Segmentation with an Improved 2D UNet (Task 3) | s4744546#273baulch-m wants to merge 27 commits intoshakes76:topic-recognitionfrom
baulch-m wants to merge 27 commits intoshakes76:topic-recognitionfrom
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…dice loss class, and added constants to train.py
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<This is an initial inspection, no action is required at this point.> File Organizing:
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Marked as per the due date and changes after which aren't necessarily allowed to contribute to grade for fairness. |
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Author
Marcus Baulch s4744546
Summary
This pull request introduces a semantic segmentation of HipMRI images using an improved U-Net architecture. The model segments anatomical structures into 6 distinct classes and achieves a Dice coefficient of 0.8777 on the test set, exceeding the minimum requirement of 0.75.
Objectives
Key Features
Architecture Improvements
Training Enhancements
Dataset
Results
Performance Metrics
Key Achievements
Implementation
Files Added
Core Implementation
modules.py- Residual U-Net architecture with ResidualBlock and UNet classesdataset.py- DataSegmenter class with augmentation supporttrain.py- Training pipeline with DiceLoss and ModelTrainerpredict.py- Evaluation script with multi-class Dice computation and visualisation generatorREADME.md- Thorough documentation of model and outputsDependencies