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EElayoutlmv3_jordyvl_rvl_cdip_100_examples_per_class_2023-08-12_text_vision_only

This model is a fine-tuned version of microsoft/layoutlmv3-base on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 1.3116
  • Accuracy: 0.7775
  • Exit 0 Accuracy: 0.065
  • Exit 1 Accuracy: 0.09

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: 2e-05
  • train_batch_size: 2
  • eval_batch_size: 1
  • seed: 42
  • gradient_accumulation_steps: 24
  • total_train_batch_size: 48
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 60

Training results

Training Loss Epoch Step Validation Loss Accuracy Exit 0 Accuracy Exit 1 Accuracy
No log 0.96 16 2.6827 0.1275 0.0625 0.04
No log 1.98 33 2.5158 0.25 0.06 0.095
No log 3.0 50 2.3010 0.33 0.0625 0.095
No log 3.96 66 1.9997 0.435 0.055 0.0925
No log 4.98 83 1.7239 0.6 0.06 0.0925
No log 6.0 100 1.4812 0.6175 0.06 0.09
No log 6.96 116 1.2872 0.6875 0.0625 0.09
No log 7.98 133 1.1118 0.74 0.055 0.09
No log 9.0 150 1.0144 0.7425 0.0625 0.09
No log 9.96 166 0.9663 0.7475 0.0575 0.09
No log 10.98 183 0.9532 0.7475 0.0625 0.09
No log 12.0 200 0.9157 0.7525 0.06 0.09
No log 12.96 216 0.8894 0.77 0.06 0.09
No log 13.98 233 0.9460 0.75 0.0625 0.09
No log 15.0 250 1.0019 0.745 0.0625 0.09
No log 15.96 266 0.9059 0.77 0.0625 0.0875
No log 16.98 283 1.0664 0.7325 0.06 0.0875
No log 18.0 300 1.0637 0.74 0.065 0.0875
No log 18.96 316 1.0398 0.7725 0.09 0.085
No log 19.98 333 1.0745 0.775 0.06 0.0875
No log 21.0 350 1.0653 0.78 0.0625 0.0875
No log 21.96 366 1.0705 0.785 0.065 0.0875
No log 22.98 383 1.1014 0.78 0.0725 0.0875
No log 24.0 400 1.1335 0.78 0.0625 0.0875
No log 24.96 416 1.1510 0.775 0.0725 0.0875
No log 25.98 433 1.1528 0.7825 0.0675 0.0875
No log 27.0 450 1.1758 0.7825 0.0625 0.0875
No log 27.96 466 1.1836 0.785 0.07 0.0875
No log 28.98 483 1.1927 0.78 0.0675 0.0875
1.6955 30.0 500 1.2061 0.7825 0.0775 0.0875
1.6955 30.96 516 1.2128 0.7775 0.065 0.0875
1.6955 31.98 533 1.2172 0.7725 0.07 0.0875
1.6955 33.0 550 1.2237 0.775 0.075 0.0875
1.6955 33.96 566 1.2399 0.7775 0.0625 0.0875
1.6955 34.98 583 1.2590 0.78 0.065 0.0875
1.6955 36.0 600 1.2586 0.7825 0.065 0.0875
1.6955 36.96 616 1.2603 0.775 0.0675 0.0875
1.6955 37.98 633 1.2576 0.78 0.065 0.0875
1.6955 39.0 650 1.2698 0.7775 0.075 0.0875
1.6955 39.96 666 1.2775 0.7725 0.075 0.0875
1.6955 40.98 683 1.2769 0.7725 0.07 0.0875
1.6955 42.0 700 1.2769 0.7725 0.0625 0.0875
1.6955 42.96 716 1.2804 0.775 0.0675 0.0875
1.6955 43.98 733 1.2834 0.775 0.065 0.085
1.6955 45.0 750 1.2907 0.7775 0.0675 0.0875
1.6955 45.96 766 1.2968 0.7775 0.0675 0.0875
1.6955 46.98 783 1.2981 0.7775 0.065 0.0875
1.6955 48.0 800 1.3017 0.7775 0.065 0.0875
1.6955 48.96 816 1.3050 0.7775 0.0675 0.09
1.6955 49.98 833 1.3050 0.775 0.07 0.09
1.6955 51.0 850 1.3044 0.775 0.07 0.09
1.6955 51.96 866 1.3057 0.775 0.0675 0.09
1.6955 52.98 883 1.3072 0.7775 0.0675 0.09
1.6955 54.0 900 1.3101 0.7775 0.0675 0.09
1.6955 54.96 916 1.3119 0.7775 0.065 0.09
1.6955 55.98 933 1.3116 0.7775 0.065 0.09
1.6955 57.0 950 1.3115 0.7775 0.065 0.09
1.6955 57.6 960 1.3116 0.7775 0.065 0.09

Framework versions

  • Transformers 4.31.0
  • Pytorch 2.0.1+cu117
  • Datasets 2.13.1
  • Tokenizers 0.13.3
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