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lesson-summarization

This model is a fine-tuned version of t5-small on the None dataset. It achieves the following results on the evaluation set:

  • Loss: 2.5713

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: 1
  • eval_batch_size: 1
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 200

Training results

Training Loss Epoch Step Validation Loss
2.9037 3.12 200 2.2456
2.5914 6.25 400 2.1498
2.393 9.38 600 2.1002
2.2409 12.5 800 2.0754
2.1515 15.62 1000 2.0683
2.0633 18.75 1200 2.0541
1.9418 21.88 1400 2.0603
1.837 25.0 1600 2.0788
1.7715 28.12 1800 2.0754
1.6957 31.25 2000 2.0815
1.6079 34.38 2200 2.0940
1.5947 37.5 2400 2.1094
1.4603 40.62 2600 2.1147
1.4621 43.75 2800 2.1354
1.4021 46.88 3000 2.1519
1.3394 50.0 3200 2.1670
1.2866 53.12 3400 2.1921
1.2681 56.25 3600 2.2045
1.1866 59.38 3800 2.2194
1.2098 62.5 4000 2.2302
1.1386 65.62 4200 2.2400
1.0853 68.75 4400 2.2634
1.0888 71.88 4600 2.2810
1.0408 75.0 4800 2.2909
1.0309 78.12 5000 2.3059
0.9523 81.25 5200 2.3249
0.9671 84.38 5400 2.3333
0.9413 87.5 5600 2.3543
0.9127 90.62 5800 2.3636
0.9095 93.75 6000 2.3676
0.8952 96.88 6200 2.3756
0.857 100.0 6400 2.3878
0.8474 103.12 6600 2.4148
0.8215 106.25 6800 2.4231
0.8172 109.38 7000 2.4243
0.7761 112.5 7200 2.4489
0.7737 115.62 7400 2.4718
0.7476 118.75 7600 2.4614
0.7345 121.88 7800 2.4705
0.7426 125.0 8000 2.4740
0.7151 128.12 8200 2.4833
0.7191 131.25 8400 2.4786
0.6818 134.38 8600 2.4882
0.6862 137.5 8800 2.4938
0.6929 140.62 9000 2.4977
0.6494 143.75 9200 2.5195
0.6689 146.88 9400 2.5185
0.6492 150.0 9600 2.5259
0.6384 153.12 9800 2.5259
0.6435 156.25 10000 2.5287
0.6251 159.38 10200 2.5284
0.6295 162.5 10400 2.5398
0.6324 165.62 10600 2.5442
0.6252 168.75 10800 2.5481
0.6108 171.88 11000 2.5455
0.6034 175.0 11200 2.5502
0.5969 178.12 11400 2.5601
0.5949 181.25 11600 2.5617
0.6183 184.38 11800 2.5679
0.5805 187.5 12000 2.5687
0.6032 190.62 12200 2.5708
0.5955 193.75 12400 2.5709
0.5961 196.88 12600 2.5713
0.5914 200.0 12800 2.5713

Framework versions

  • Transformers 4.31.0
  • Pytorch 1.13.1
  • Datasets 2.12.0
  • Tokenizers 0.13.3
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