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EElayoutlmv3_jordyvl_rvl_cdip_100_examples_per_class_2023-08-10

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: 10.1413
  • Accuracy: 0.7325
  • Exit 0 Accuracy: 0.1725
  • Exit 1 Accuracy: 0.2175
  • Exit 2 Accuracy: 0.6075
  • Exit 3 Accuracy: 0.715
  • Exit 4 Accuracy: 0.735

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 Exit 2 Accuracy Exit 3 Accuracy Exit 4 Accuracy
No log 0.96 16 16.4817 0.17 0.0825 0.045 0.105 0.0625 0.0625
No log 1.98 33 15.9950 0.2675 0.1 0.1325 0.195 0.1775 0.2425
No log 3.0 50 14.9811 0.475 0.1025 0.1475 0.24 0.29 0.4425
No log 3.96 66 14.0127 0.5675 0.105 0.1425 0.27 0.3975 0.505
No log 4.98 83 13.3047 0.6075 0.125 0.1425 0.3175 0.43 0.595
No log 6.0 100 12.7573 0.6125 0.125 0.1475 0.325 0.495 0.615
No log 6.96 116 12.3656 0.645 0.1175 0.155 0.33 0.5175 0.6375
No log 7.98 133 11.9582 0.6625 0.115 0.16 0.3525 0.5725 0.67
No log 9.0 150 11.6533 0.6825 0.1225 0.16 0.375 0.6 0.7075
No log 9.96 166 11.5143 0.685 0.1525 0.1625 0.38 0.6 0.675
No log 10.98 183 11.3152 0.6625 0.115 0.1625 0.41 0.6225 0.6725
No log 12.0 200 11.0708 0.695 0.11 0.1625 0.425 0.6225 0.7075
No log 12.96 216 11.0412 0.6975 0.1125 0.1575 0.4 0.645 0.685
No log 13.98 233 10.8782 0.7125 0.1425 0.165 0.4275 0.6325 0.7075
No log 15.0 250 10.7282 0.7075 0.115 0.165 0.4225 0.65 0.7175
No log 15.96 266 10.7039 0.695 0.15 0.16 0.4375 0.6375 0.69
No log 16.98 283 10.5455 0.7125 0.13 0.165 0.4375 0.6675 0.715
No log 18.0 300 10.5214 0.7075 0.1275 0.17 0.45 0.6825 0.7075
No log 18.96 316 10.4995 0.715 0.155 0.1725 0.4525 0.68 0.7125
No log 19.98 333 10.3224 0.725 0.1475 0.1825 0.46 0.68 0.7225
No log 21.0 350 10.4247 0.71 0.1425 0.1825 0.4625 0.68 0.71
No log 21.96 366 10.3881 0.705 0.1375 0.1825 0.46 0.66 0.7125
No log 22.98 383 10.3065 0.715 0.1375 0.1875 0.465 0.6925 0.7225
No log 24.0 400 10.1955 0.72 0.145 0.1875 0.4725 0.695 0.7225
No log 24.96 416 10.1607 0.72 0.165 0.19 0.4925 0.7075 0.7175
No log 25.98 433 10.2416 0.72 0.14 0.195 0.48 0.7025 0.7275
No log 27.0 450 10.1321 0.715 0.145 0.1875 0.4925 0.7125 0.72
No log 27.96 466 10.1982 0.7275 0.145 0.1875 0.4875 0.7075 0.73
No log 28.98 483 10.2237 0.72 0.1575 0.19 0.515 0.7 0.7225
10.0174 30.0 500 10.1426 0.7175 0.1675 0.1975 0.5275 0.7125 0.7225
10.0174 30.96 516 10.1056 0.7325 0.14 0.1975 0.515 0.715 0.7325
10.0174 31.98 533 10.1616 0.7225 0.1525 0.195 0.5275 0.7175 0.72
10.0174 33.0 550 10.1053 0.7325 0.1425 0.195 0.525 0.7125 0.7275
10.0174 33.96 566 10.1581 0.7175 0.165 0.2 0.5375 0.71 0.71
10.0174 34.98 583 10.0835 0.7225 0.15 0.2025 0.5375 0.715 0.7225
10.0174 36.0 600 10.1349 0.725 0.1425 0.2 0.5375 0.7025 0.725
10.0174 36.96 616 10.0424 0.7325 0.1625 0.1975 0.545 0.7225 0.735
10.0174 37.98 633 10.0692 0.73 0.155 0.195 0.5525 0.7225 0.74
10.0174 39.0 650 10.0838 0.7325 0.1625 0.1975 0.56 0.7225 0.7375
10.0174 39.96 666 10.1160 0.7275 0.1675 0.1975 0.5575 0.7225 0.725
10.0174 40.98 683 10.0971 0.735 0.1675 0.1975 0.5625 0.7175 0.73
10.0174 42.0 700 10.1207 0.73 0.165 0.2 0.5775 0.715 0.7275
10.0174 42.96 716 10.1448 0.7325 0.175 0.205 0.5775 0.7175 0.73
10.0174 43.98 733 10.0945 0.735 0.1675 0.21 0.5775 0.7175 0.735
10.0174 45.0 750 10.1789 0.73 0.17 0.2175 0.5775 0.7125 0.7275
10.0174 45.96 766 10.1274 0.735 0.175 0.215 0.5875 0.7075 0.735
10.0174 46.98 783 10.1656 0.735 0.155 0.2125 0.5875 0.7125 0.7375
10.0174 48.0 800 10.1557 0.7275 0.16 0.215 0.6025 0.715 0.7325
10.0174 48.96 816 10.1436 0.74 0.165 0.215 0.6025 0.7175 0.735
10.0174 49.98 833 10.1474 0.7325 0.1625 0.215 0.6 0.715 0.735
10.0174 51.0 850 10.1647 0.7275 0.1725 0.2175 0.605 0.7175 0.7325
10.0174 51.96 866 10.1375 0.73 0.1775 0.215 0.6025 0.7125 0.7375
10.0174 52.98 883 10.1458 0.7325 0.1675 0.2175 0.605 0.7125 0.7375
10.0174 54.0 900 10.1527 0.7275 0.175 0.22 0.6025 0.715 0.73
10.0174 54.96 916 10.1349 0.7325 0.175 0.2175 0.6025 0.72 0.735
10.0174 55.98 933 10.1376 0.7325 0.175 0.22 0.6025 0.72 0.7325
10.0174 57.0 950 10.1413 0.7325 0.1725 0.2175 0.6075 0.715 0.7325
10.0174 57.6 960 10.1413 0.7325 0.1725 0.2175 0.6075 0.715 0.735

Framework versions

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