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smids_3x_deit_tiny_sgd_0001_fold4

This model is a fine-tuned version of facebook/deit-tiny-patch16-224 on the imagefolder dataset. It achieves the following results on the evaluation set:

  • Loss: 0.6133
  • Accuracy: 0.745

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: 0.0001
  • train_batch_size: 32
  • eval_batch_size: 32
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_ratio: 0.1
  • num_epochs: 50

Training results

Training Loss Epoch Step Validation Loss Accuracy
1.2288 1.0 225 1.2017 0.3733
1.1101 2.0 450 1.1316 0.3717
1.1013 3.0 675 1.0936 0.395
1.0586 4.0 900 1.0632 0.42
1.0359 5.0 1125 1.0361 0.4367
0.9983 6.0 1350 1.0106 0.4633
1.019 7.0 1575 0.9868 0.475
0.9201 8.0 1800 0.9635 0.4933
0.9378 9.0 2025 0.9411 0.5117
0.9004 10.0 2250 0.9202 0.535
0.8802 11.0 2475 0.9003 0.5517
0.9236 12.0 2700 0.8818 0.565
0.8457 13.0 2925 0.8636 0.5817
0.7849 14.0 3150 0.8469 0.5917
0.8073 15.0 3375 0.8311 0.6017
0.8252 16.0 3600 0.8159 0.61
0.7763 17.0 3825 0.8016 0.6267
0.785 18.0 4050 0.7881 0.6333
0.7828 19.0 4275 0.7746 0.64
0.7255 20.0 4500 0.7617 0.6483
0.7412 21.0 4725 0.7495 0.6567
0.7373 22.0 4950 0.7382 0.665
0.7527 23.0 5175 0.7270 0.6667
0.6946 24.0 5400 0.7170 0.67
0.6784 25.0 5625 0.7075 0.6817
0.6623 26.0 5850 0.6988 0.6933
0.6734 27.0 6075 0.6906 0.6983
0.6676 28.0 6300 0.6828 0.7083
0.6739 29.0 6525 0.6758 0.7117
0.6897 30.0 6750 0.6692 0.715
0.6092 31.0 6975 0.6631 0.7167
0.5885 32.0 7200 0.6574 0.7217
0.618 33.0 7425 0.6519 0.7217
0.5886 34.0 7650 0.6471 0.7233
0.587 35.0 7875 0.6427 0.7233
0.6289 36.0 8100 0.6385 0.7233
0.6176 37.0 8325 0.6348 0.7267
0.6111 38.0 8550 0.6313 0.7283
0.5626 39.0 8775 0.6283 0.7317
0.5867 40.0 9000 0.6256 0.735
0.6103 41.0 9225 0.6232 0.7367
0.6145 42.0 9450 0.6210 0.7417
0.5742 43.0 9675 0.6191 0.7417
0.6152 44.0 9900 0.6175 0.745
0.6028 45.0 10125 0.6162 0.745
0.5964 46.0 10350 0.6151 0.745
0.5533 47.0 10575 0.6143 0.745
0.597 48.0 10800 0.6137 0.745
0.617 49.0 11025 0.6134 0.745
0.5745 50.0 11250 0.6133 0.745

Framework versions

  • Transformers 4.32.1
  • Pytorch 2.1.1+cu121
  • Datasets 2.12.0
  • Tokenizers 0.13.2
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