MahimaTayal123/DR-Classifier
This model is a fine-tuned version of google/vit-base-patch16-224-in21k on an unknown dataset. It achieves the following results on the evaluation set:
- Train Loss: 0.2187
- Validation Loss: 0.2654
- Train Accuracy: 0.9420
- Epoch: 5
Model description
This model leverages the Vision Transformer (ViT) architecture to classify retinal images for early detection of Diabetic Retinopathy (DR). The fine-tuned model improves accuracy and generalization on medical imaging datasets.
Intended uses & limitations
Intended Uses:
- Medical diagnosis support for Diabetic Retinopathy
- Research applications in ophthalmology and AI-based healthcare
Limitations:
- Requires high-quality retinal images for accurate predictions
- Not a substitute for professional medical advice; should be used as an assistive tool
Training and evaluation data
The model was trained on a curated dataset containing labeled retinal images. The dataset includes various severity levels of Diabetic Retinopathy, ensuring robustness in classification.
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
- optimizer: {'name': 'AdamWeightDecay', 'learning_rate': {'module': 'keras.optimizers.schedules', 'class_name': 'PolynomialDecay', 'config': {'initial_learning_rate': 3e-05, 'decay_steps': 146985, 'end_learning_rate': 0.0, 'power': 1.0, 'cycle': False, 'name': None}, 'registered_name': None}, 'decay': 0.0, 'beta_1': 0.9, 'beta_2': 0.999, 'epsilon': 1e-08, 'amsgrad': False, 'weight_decay_rate': 0.01}
- training_precision: float32
Training results
Epoch | Train Loss | Validation Loss | Train Accuracy |
---|---|---|---|
1 | 0.4513 | 0.5234 | 0.8270 |
2 | 0.3124 | 0.4102 | 0.8930 |
3 | 0.2751 | 0.3856 | 0.9150 |
4 | 0.2376 | 0.3012 | 0.9320 |
5 | 0.2187 | 0.2654 | 0.9420 |
Framework versions
- Transformers 4.46.2
- TensorFlow 2.17.1
- Datasets 3.1.0
- Tokenizers 0.20.3
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Model tree for MahimaTayal123/DR-Classifier
Base model
google/vit-base-patch16-224-in21k