103d0bb8f61228e90c689390debd8e38

This model is a fine-tuned version of google-bert/bert-base-uncased on the nyu-mll/glue [mrpc] dataset. It achieves the following results on the evaluation set:

  • Loss: 0.7779
  • Data Size: 1.0
  • Epoch Runtime: 7.3521
  • Accuracy: 0.8166
  • F1 Macro: 0.7895
  • Rouge1: 0.8166
  • Rouge2: 0.0
  • Rougel: 0.8166
  • Rougelsum: 0.8166

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
  • distributed_type: multi-GPU
  • num_devices: 4
  • total_train_batch_size: 32
  • total_eval_batch_size: 32
  • optimizer: Use adamw_torch with betas=(0.9,0.999) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
  • lr_scheduler_type: constant
  • num_epochs: 50

Training results

Training Loss Epoch Step Validation Loss Data Size Epoch Runtime Accuracy F1 Macro Rouge1 Rouge2 Rougel Rougelsum
No log 0 0 0.6728 0 1.2983 0.6374 0.4505 0.6374 0.0 0.6374 0.6380
No log 1 114 0.6302 0.0078 2.2342 0.6651 0.3994 0.6657 0.0 0.6645 0.6651
No log 2 228 0.6589 0.0156 1.6436 0.6651 0.3994 0.6657 0.0 0.6645 0.6651
No log 3 342 0.6333 0.0312 1.9533 0.6651 0.3994 0.6657 0.0 0.6645 0.6651
0.0204 4 456 0.6166 0.0625 2.2524 0.6651 0.3994 0.6657 0.0 0.6645 0.6651
0.0204 5 570 0.5429 0.125 2.4771 0.7353 0.6422 0.7353 0.0 0.7353 0.7353
0.0204 6 684 0.4656 0.25 3.2792 0.7854 0.7520 0.7854 0.0 0.7854 0.7854
0.1243 7 798 0.4209 0.5 4.4934 0.8096 0.7783 0.8101 0.0 0.8101 0.8101
0.3443 8.0 912 0.4419 1.0 7.2706 0.8196 0.7815 0.8196 0.0 0.8202 0.8196
0.1688 9.0 1026 0.6484 1.0 6.8882 0.8184 0.7956 0.8184 0.0 0.8190 0.8184
0.1096 10.0 1140 0.7006 1.0 6.7309 0.7954 0.7455 0.7954 0.0 0.7954 0.7954
0.0664 11.0 1254 0.7779 1.0 7.3521 0.8166 0.7895 0.8166 0.0 0.8166 0.8166

Framework versions

  • Transformers 4.57.0
  • Pytorch 2.8.0+cu128
  • Datasets 4.3.0
  • Tokenizers 0.22.1
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