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flant5action

This model is a fine-tuned version of google/flan-t5-base on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 0.1428
  • Rouge1: 56.0664
  • Rouge2: 34.7343
  • Rougel: 56.0394
  • Rougelsum: 56.0313
  • Gen Len: 18.9852

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: 5e-05
  • train_batch_size: 8
  • eval_batch_size: 8
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 25

Training results

Training Loss Epoch Step Validation Loss Rouge1 Rouge2 Rougel Rougelsum Gen Len
0.2525 1.0 674 0.2294 53.2181 29.8509 53.1635 53.1474 19.0
0.2434 2.0 1348 0.2240 53.5453 30.1367 53.4479 53.44 18.9970
0.2281 3.0 2022 0.2135 53.1901 30.3456 53.0849 53.0759 18.9970
0.2221 4.0 2696 0.2056 52.0669 29.4321 51.9567 51.9512 18.9881
0.2145 5.0 3370 0.2012 54.484 31.6451 54.4213 54.4144 18.9970
0.2121 6.0 4044 0.1961 54.1219 31.2019 54.0701 54.0668 18.9970
0.1979 7.0 4718 0.1901 54.9091 32.2416 54.8482 54.8318 18.9911
0.2086 8.0 5392 0.1846 54.9615 32.4701 54.8836 54.8821 18.9970
0.1985 9.0 6066 0.1795 55.2027 32.5792 55.1531 55.1431 18.9970
0.2027 10.0 6740 0.1746 54.4079 32.2598 54.38 54.3697 18.9970
0.1922 11.0 7414 0.1707 55.4814 33.2069 55.4428 55.4298 18.9970
0.1806 12.0 8088 0.1660 55.7189 33.831 55.6796 55.6702 18.9970
0.1834 13.0 8762 0.1623 55.6253 33.9516 55.5925 55.585 18.9941
0.1795 14.0 9436 0.1596 55.6786 33.7589 55.6232 55.6183 18.9911
0.1767 15.0 10110 0.1553 55.8132 34.1603 55.795 55.7873 18.9911
0.1792 16.0 10784 0.1539 55.9694 34.4612 55.9454 55.9323 18.9792
0.1785 17.0 11458 0.1521 56.2202 34.6224 56.1781 56.1706 18.9941
0.1705 18.0 12132 0.1496 56.4102 34.7821 56.3911 56.3789 18.9911
0.1668 19.0 12806 0.1478 56.1222 34.6804 56.0821 56.077 18.9881
0.1729 20.0 13480 0.1459 56.1605 34.8596 56.1349 56.1221 18.9852
0.1759 21.0 14154 0.1451 56.1232 34.8956 56.1054 56.0994 18.9852
0.1713 22.0 14828 0.1439 55.9801 34.6435 55.9556 55.9482 18.9763
0.1751 23.0 15502 0.1436 56.2088 34.8754 56.1771 56.1758 18.9852
0.1626 24.0 16176 0.1431 56.0657 34.7302 56.04 56.0317 18.9852
0.1696 25.0 16850 0.1428 56.0664 34.7343 56.0394 56.0313 18.9852

Framework versions

  • Transformers 4.31.0
  • Pytorch 2.0.1+cu118
  • Datasets 2.14.3
  • Tokenizers 0.13.3
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