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smids_10x_deit_tiny_rms_0001_fold3

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: 1.2831
  • 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: 0.001
  • 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
0.8666 1.0 750 0.8178 0.5867
0.793 2.0 1500 0.8394 0.5383
0.7315 3.0 2250 0.8051 0.6133
0.6465 4.0 3000 0.7374 0.65
0.703 5.0 3750 0.7241 0.6517
0.6607 6.0 4500 0.6935 0.6617
0.6906 7.0 5250 0.6781 0.675
0.673 8.0 6000 0.6701 0.7
0.5876 9.0 6750 0.6156 0.715
0.5761 10.0 7500 0.6686 0.6883
0.695 11.0 8250 0.6673 0.675
0.5527 12.0 9000 0.6193 0.7183
0.5532 13.0 9750 0.6407 0.6983
0.6398 14.0 10500 0.6327 0.7267
0.5686 15.0 11250 0.6250 0.71
0.6507 16.0 12000 0.6131 0.7183
0.586 17.0 12750 0.5959 0.7367
0.6263 18.0 13500 0.6433 0.7083
0.5943 19.0 14250 0.5766 0.7467
0.6095 20.0 15000 0.5801 0.7383
0.4915 21.0 15750 0.5843 0.7467
0.5994 22.0 16500 0.5711 0.74
0.4915 23.0 17250 0.5881 0.7367
0.5455 24.0 18000 0.5829 0.73
0.5646 25.0 18750 0.6056 0.73
0.4802 26.0 19500 0.5993 0.73
0.4066 27.0 20250 0.5797 0.7617
0.5295 28.0 21000 0.6131 0.7433
0.4838 29.0 21750 0.5976 0.7533
0.454 30.0 22500 0.5851 0.755
0.3428 31.0 23250 0.6240 0.745
0.3934 32.0 24000 0.6108 0.755
0.3564 33.0 24750 0.6563 0.755
0.4234 34.0 25500 0.6360 0.7633
0.3741 35.0 26250 0.6145 0.765
0.3785 36.0 27000 0.6637 0.7583
0.3282 37.0 27750 0.6548 0.7817
0.3768 38.0 28500 0.7250 0.7483
0.3263 39.0 29250 0.6603 0.7633
0.3862 40.0 30000 0.6936 0.7617
0.2705 41.0 30750 0.7486 0.7733
0.2694 42.0 31500 0.8322 0.7683
0.2855 43.0 32250 0.8068 0.7733
0.2669 44.0 33000 0.9199 0.755
0.2143 45.0 33750 0.9335 0.7667
0.1925 46.0 34500 1.0133 0.76
0.1987 47.0 35250 1.0665 0.745
0.1978 48.0 36000 1.1590 0.75
0.1441 49.0 36750 1.2474 0.7517
0.1372 50.0 37500 1.2831 0.745

Framework versions

  • Transformers 4.32.1
  • Pytorch 2.1.0+cu121
  • Datasets 2.12.0
  • Tokenizers 0.13.2
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Evaluation results