tomato-leaf-disease-classification-resnet50
This model is a fine-tuned version of microsoft/resnet-50 on the wellCh4n/tomato-leaf-disease-image dataset. It achieves the following results on the evaluation set:
- Loss: 0.0197
- Accuracy: 0.9956
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
- learning_rate: 2e-05
- train_batch_size: 16
- eval_batch_size: 8
- seed: 1337
- optimizer: Use OptimizerNames.ADAMW_TORCH with betas=(0.9,0.999) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
- lr_scheduler_type: linear
- num_epochs: 100.0
Training results
Training Loss | Epoch | Step | Validation Loss | Accuracy |
---|---|---|---|---|
1.6891 | 1.0 | 965 | 1.6572 | 0.3488 |
1.1351 | 2.0 | 1930 | 1.1593 | 0.7126 |
0.7767 | 3.0 | 2895 | 0.6135 | 0.8168 |
0.7963 | 4.0 | 3860 | 0.3818 | 0.8796 |
0.547 | 5.0 | 4825 | 0.2581 | 0.9302 |
0.5104 | 6.0 | 5790 | 0.2106 | 0.9438 |
0.3997 | 7.0 | 6755 | 0.1579 | 0.9563 |
0.2527 | 8.0 | 7720 | 0.1292 | 0.9604 |
0.3268 | 9.0 | 8685 | 0.1154 | 0.9659 |
0.2595 | 10.0 | 9650 | 0.1018 | 0.9699 |
0.2269 | 11.0 | 10615 | 0.0869 | 0.9743 |
0.2515 | 12.0 | 11580 | 0.0783 | 0.9747 |
0.2604 | 13.0 | 12545 | 0.0710 | 0.9794 |
0.2583 | 14.0 | 13510 | 0.0704 | 0.9783 |
0.2004 | 15.0 | 14475 | 0.0603 | 0.9824 |
0.2552 | 16.0 | 15440 | 0.0565 | 0.9835 |
0.2192 | 17.0 | 16405 | 0.0553 | 0.9846 |
0.3443 | 18.0 | 17370 | 0.0508 | 0.9831 |
0.1954 | 19.0 | 18335 | 0.0530 | 0.9846 |
0.2685 | 20.0 | 19300 | 0.0430 | 0.9864 |
0.1277 | 21.0 | 20265 | 0.0406 | 0.9864 |
0.1388 | 22.0 | 21230 | 0.0404 | 0.9872 |
0.2379 | 23.0 | 22195 | 0.0399 | 0.9875 |
0.1018 | 24.0 | 23160 | 0.0441 | 0.9879 |
0.2155 | 25.0 | 24125 | 0.0364 | 0.9905 |
0.1699 | 26.0 | 25090 | 0.0398 | 0.9875 |
0.2772 | 27.0 | 26055 | 0.0364 | 0.9872 |
0.1669 | 28.0 | 27020 | 0.0369 | 0.9894 |
0.0867 | 29.0 | 27985 | 0.0339 | 0.9901 |
0.1314 | 30.0 | 28950 | 0.0322 | 0.9905 |
0.082 | 31.0 | 29915 | 0.0362 | 0.9879 |
0.0393 | 32.0 | 30880 | 0.0332 | 0.9908 |
0.0812 | 33.0 | 31845 | 0.0329 | 0.9905 |
0.2634 | 34.0 | 32810 | 0.0333 | 0.9897 |
0.1581 | 35.0 | 33775 | 0.0337 | 0.9901 |
0.168 | 36.0 | 34740 | 0.0298 | 0.9890 |
0.0653 | 37.0 | 35705 | 0.0311 | 0.9905 |
0.0998 | 38.0 | 36670 | 0.0326 | 0.9901 |
0.0947 | 39.0 | 37635 | 0.0288 | 0.9919 |
0.1126 | 40.0 | 38600 | 0.0272 | 0.9916 |
0.1319 | 41.0 | 39565 | 0.0272 | 0.9919 |
0.0446 | 42.0 | 40530 | 0.0283 | 0.9916 |
0.2453 | 43.0 | 41495 | 0.0281 | 0.9919 |
0.0708 | 44.0 | 42460 | 0.0263 | 0.9923 |
0.0441 | 45.0 | 43425 | 0.0262 | 0.9916 |
0.0936 | 46.0 | 44390 | 0.0252 | 0.9919 |
0.1565 | 47.0 | 45355 | 0.0284 | 0.9923 |
0.0404 | 48.0 | 46320 | 0.0263 | 0.9930 |
0.0357 | 49.0 | 47285 | 0.0240 | 0.9930 |
0.0971 | 50.0 | 48250 | 0.0285 | 0.9916 |
0.0582 | 51.0 | 49215 | 0.0251 | 0.9923 |
0.048 | 52.0 | 50180 | 0.0257 | 0.9919 |
0.1218 | 53.0 | 51145 | 0.0252 | 0.9930 |
0.0576 | 54.0 | 52110 | 0.0227 | 0.9930 |
0.0723 | 55.0 | 53075 | 0.0227 | 0.9930 |
0.1347 | 56.0 | 54040 | 0.0242 | 0.9941 |
0.1684 | 57.0 | 55005 | 0.0255 | 0.9927 |
0.0525 | 58.0 | 55970 | 0.0250 | 0.9938 |
0.1031 | 59.0 | 56935 | 0.0265 | 0.9923 |
0.0768 | 60.0 | 57900 | 0.0244 | 0.9941 |
0.0416 | 61.0 | 58865 | 0.0207 | 0.9934 |
0.1783 | 62.0 | 59830 | 0.0237 | 0.9941 |
0.1253 | 63.0 | 60795 | 0.0269 | 0.9912 |
0.0448 | 64.0 | 61760 | 0.0236 | 0.9941 |
0.0967 | 65.0 | 62725 | 0.0230 | 0.9934 |
0.0486 | 66.0 | 63690 | 0.0229 | 0.9941 |
0.0442 | 67.0 | 64655 | 0.0256 | 0.9934 |
0.0526 | 68.0 | 65620 | 0.0210 | 0.9945 |
0.0949 | 69.0 | 66585 | 0.0250 | 0.9938 |
0.0674 | 70.0 | 67550 | 0.0228 | 0.9938 |
0.1554 | 71.0 | 68515 | 0.0240 | 0.9941 |
0.0598 | 72.0 | 69480 | 0.0233 | 0.9945 |
0.0632 | 73.0 | 70445 | 0.0218 | 0.9949 |
0.0951 | 74.0 | 71410 | 0.0234 | 0.9945 |
0.1634 | 75.0 | 72375 | 0.0245 | 0.9945 |
0.2039 | 76.0 | 73340 | 0.0222 | 0.9938 |
0.0741 | 77.0 | 74305 | 0.0226 | 0.9949 |
0.0923 | 78.0 | 75270 | 0.0218 | 0.9949 |
0.0351 | 79.0 | 76235 | 0.0230 | 0.9945 |
0.1234 | 80.0 | 77200 | 0.0244 | 0.9934 |
0.0659 | 81.0 | 78165 | 0.0232 | 0.9945 |
0.0393 | 82.0 | 79130 | 0.0210 | 0.9949 |
0.053 | 83.0 | 80095 | 0.0205 | 0.9945 |
0.0575 | 84.0 | 81060 | 0.0210 | 0.9945 |
0.0651 | 85.0 | 82025 | 0.0198 | 0.9949 |
0.0875 | 86.0 | 82990 | 0.0210 | 0.9945 |
0.1006 | 87.0 | 83955 | 0.0214 | 0.9949 |
0.0466 | 88.0 | 84920 | 0.0211 | 0.9941 |
0.088 | 89.0 | 85885 | 0.0233 | 0.9923 |
0.1162 | 90.0 | 86850 | 0.0197 | 0.9956 |
0.0641 | 91.0 | 87815 | 0.0213 | 0.9949 |
0.0867 | 92.0 | 88780 | 0.0203 | 0.9952 |
0.0305 | 93.0 | 89745 | 0.0212 | 0.9941 |
0.1009 | 94.0 | 90710 | 0.0200 | 0.9956 |
0.084 | 95.0 | 91675 | 0.0200 | 0.9960 |
0.0409 | 96.0 | 92640 | 0.0213 | 0.9949 |
0.107 | 97.0 | 93605 | 0.0210 | 0.9934 |
0.0558 | 98.0 | 94570 | 0.0206 | 0.9952 |
0.0644 | 99.0 | 95535 | 0.0219 | 0.9949 |
0.0617 | 100.0 | 96500 | 0.0205 | 0.9941 |
Framework versions
- Transformers 4.48.0.dev0
- Pytorch 2.2.2+cu121
- Datasets 3.2.0
- Tokenizers 0.21.0
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Base model
microsoft/resnet-50