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smids_10x_deit_tiny_rms_001_fold5

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: 1.1358
  • Accuracy: 0.77

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: 0.001
  • 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
0.842 1.0 750 0.7944 0.635
0.7921 2.0 1500 0.7461 0.68
0.7457 3.0 2250 0.7489 0.6567
0.7198 4.0 3000 0.6696 0.7017
0.7308 5.0 3750 0.6733 0.7117
0.6476 6.0 4500 0.6584 0.7183
0.6495 7.0 5250 0.6399 0.72
0.6634 8.0 6000 0.6560 0.6933
0.7106 9.0 6750 0.6143 0.7217
0.6252 10.0 7500 0.6122 0.7117
0.622 11.0 8250 0.5967 0.7217
0.5747 12.0 9000 0.6620 0.6833
0.5895 13.0 9750 0.5480 0.7533
0.5822 14.0 10500 0.5552 0.7517
0.5153 15.0 11250 0.5659 0.7583
0.6055 16.0 12000 0.6107 0.7233
0.575 17.0 12750 0.5677 0.7617
0.5736 18.0 13500 0.5602 0.7667
0.5782 19.0 14250 0.5634 0.76
0.6129 20.0 15000 0.5635 0.745
0.5336 21.0 15750 0.5596 0.755
0.506 22.0 16500 0.5757 0.76
0.524 23.0 17250 0.5491 0.7817
0.4616 24.0 18000 0.5444 0.775
0.5681 25.0 18750 0.5513 0.775
0.5138 26.0 19500 0.5393 0.77
0.3668 27.0 20250 0.5531 0.7683
0.4576 28.0 21000 0.5461 0.7833
0.4869 29.0 21750 0.5490 0.7817
0.4448 30.0 22500 0.5673 0.7817
0.4739 31.0 23250 0.5856 0.7717
0.3935 32.0 24000 0.5695 0.7983
0.4839 33.0 24750 0.5444 0.7983
0.3678 34.0 25500 0.5927 0.77
0.3843 35.0 26250 0.5986 0.7833
0.4018 36.0 27000 0.6231 0.7783
0.3249 37.0 27750 0.6467 0.7483
0.3738 38.0 28500 0.7366 0.76
0.3927 39.0 29250 0.6338 0.7633
0.315 40.0 30000 0.6392 0.78
0.2962 41.0 30750 0.7177 0.775
0.2563 42.0 31500 0.7289 0.7717
0.2899 43.0 32250 0.7576 0.7733
0.2733 44.0 33000 0.7845 0.7717
0.2911 45.0 33750 0.8279 0.77
0.2308 46.0 34500 0.8639 0.7767
0.2511 47.0 35250 0.9705 0.7667
0.1763 48.0 36000 1.0471 0.7633
0.1753 49.0 36750 1.1025 0.775
0.1437 50.0 37500 1.1358 0.77

Framework versions

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