segformer-b0-finetuned-breastcancer-oct-1
This model is a fine-tuned version of nvidia/mit-b0 on the as-cle-bert/breastcancer-semantic-segmentation dataset. It achieves the following results on the evaluation set:
- Loss: 0.5929
- Mean Iou: 0.3697
- Mean Accuracy: 0.4304
- Overall Accuracy: 0.8938
- Accuracy Ignore: 0.1439
- Accuracy Benign Breast Cancer: 0.2911
- Accuracy Malignant Breast Cancer: 0.3033
- Accuracy Background: 0.9835
- Iou Ignore: 0.1083
- Iou Benign Breast Cancer: 0.2002
- Iou Malignant Breast Cancer: 0.2707
- Iou Background: 0.8995
Model description
More information needed
Intended uses & limitations
More information needed
Training and evaluation data
More information needed
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
- learning_rate: 6e-05
- train_batch_size: 2
- eval_batch_size: 2
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 10
Training results
Training Loss | Epoch | Step | Validation Loss | Mean Iou | Mean Accuracy | Overall Accuracy | Accuracy Ignore | Accuracy Benign Breast Cancer | Accuracy Malignant Breast Cancer | Accuracy Background | Iou Ignore | Iou Benign Breast Cancer | Iou Malignant Breast Cancer | Iou Background |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
1.2085 | 0.625 | 10 | 1.3371 | 0.2725 | 0.3749 | 0.7828 | 0.0304 | 0.2701 | 0.3474 | 0.8519 | 0.0035 | 0.0999 | 0.1818 | 0.8046 |
1.0916 | 1.25 | 20 | 1.2205 | 0.3076 | 0.3659 | 0.8755 | 0.0790 | 0.1894 | 0.2199 | 0.9754 | 0.0266 | 0.1231 | 0.1986 | 0.8820 |
1.0192 | 1.875 | 30 | 1.0365 | 0.3451 | 0.4120 | 0.8845 | 0.1439 | 0.2225 | 0.3074 | 0.9744 | 0.0524 | 0.1782 | 0.2617 | 0.8879 |
0.8858 | 2.5 | 40 | 0.9036 | 0.3147 | 0.3957 | 0.8707 | 0.1926 | 0.0816 | 0.3512 | 0.9573 | 0.0443 | 0.0738 | 0.2648 | 0.8761 |
0.7886 | 3.125 | 50 | 0.8572 | 0.3055 | 0.3844 | 0.8596 | 0.1766 | 0.1460 | 0.2618 | 0.9531 | 0.0620 | 0.0901 | 0.2061 | 0.8637 |
0.7061 | 3.75 | 60 | 0.7466 | 0.3229 | 0.3884 | 0.8787 | 0.1641 | 0.1298 | 0.2871 | 0.9727 | 0.0662 | 0.1029 | 0.2407 | 0.8820 |
0.7679 | 4.375 | 70 | 0.7367 | 0.3172 | 0.3833 | 0.8790 | 0.1766 | 0.0952 | 0.2873 | 0.9740 | 0.0659 | 0.0746 | 0.2458 | 0.8824 |
0.754 | 5.0 | 80 | 0.7271 | 0.3196 | 0.3846 | 0.8800 | 0.1746 | 0.1306 | 0.2556 | 0.9778 | 0.0707 | 0.0976 | 0.2264 | 0.8837 |
0.6705 | 5.625 | 90 | 0.6677 | 0.3286 | 0.3967 | 0.8815 | 0.1714 | 0.1968 | 0.2388 | 0.9796 | 0.0777 | 0.1352 | 0.2146 | 0.8871 |
0.7758 | 6.25 | 100 | 0.6278 | 0.3315 | 0.3980 | 0.8835 | 0.1630 | 0.2416 | 0.2025 | 0.9848 | 0.0979 | 0.1462 | 0.1896 | 0.8922 |
0.6866 | 6.875 | 110 | 0.6230 | 0.3489 | 0.4119 | 0.8887 | 0.1641 | 0.2351 | 0.2649 | 0.9837 | 0.0981 | 0.1614 | 0.2424 | 0.8938 |
0.5664 | 7.5 | 120 | 0.6334 | 0.3545 | 0.4154 | 0.8903 | 0.1638 | 0.2064 | 0.3102 | 0.9811 | 0.0982 | 0.1506 | 0.2751 | 0.8940 |
0.6008 | 8.125 | 130 | 0.6034 | 0.3478 | 0.4016 | 0.8907 | 0.1418 | 0.2122 | 0.2660 | 0.9866 | 0.1012 | 0.1477 | 0.2470 | 0.8952 |
0.5459 | 8.75 | 140 | 0.5930 | 0.3661 | 0.4277 | 0.8934 | 0.1616 | 0.2505 | 0.3161 | 0.9828 | 0.1042 | 0.1866 | 0.2734 | 0.9001 |
0.5619 | 9.375 | 150 | 0.5966 | 0.3695 | 0.4306 | 0.8937 | 0.1365 | 0.3089 | 0.2929 | 0.9841 | 0.1078 | 0.2067 | 0.2633 | 0.9000 |
0.5807 | 10.0 | 160 | 0.5929 | 0.3697 | 0.4304 | 0.8938 | 0.1439 | 0.2911 | 0.3033 | 0.9835 | 0.1083 | 0.2002 | 0.2707 | 0.8995 |
Framework versions
- Transformers 4.44.2
- Pytorch 2.5.0+cu121
- Datasets 3.1.0
- Tokenizers 0.19.1
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Base model
nvidia/mit-b0