e227683f38876549100b7a5ec987ce9a

This model is a fine-tuned version of google-t5/t5-base on the Helsinki-NLP/opus_books [fr-nl] dataset. It achieves the following results on the evaluation set:

  • Loss: 1.1320
  • Data Size: 1.0
  • Epoch Runtime: 246.5735
  • Bleu: 8.1993

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 Bleu
No log 0 0 3.7715 0 18.1804 0.5469
No log 1 1000 3.4010 0.0078 19.7679 0.8079
No log 2 2000 3.1686 0.0156 22.0671 1.1143
No log 3 3000 2.9896 0.0312 25.4138 1.0735
0.116 4 4000 2.8012 0.0625 32.0606 1.2803
2.9647 5 5000 2.6079 0.125 46.2747 1.6995
0.1672 6 6000 2.3794 0.25 74.7671 2.3617
0.2171 7 7000 2.1321 0.5 124.6736 3.0751
2.0913 8.0 8000 1.8615 1.0 229.3251 4.0645
1.9139 9.0 9000 1.7106 1.0 246.3512 4.7160
1.7825 10.0 10000 1.6044 1.0 234.0660 5.2285
1.6874 11.0 11000 1.5273 1.0 257.2715 5.6300
1.6142 12.0 12000 1.4681 1.0 233.0404 5.9439
1.5426 13.0 13000 1.4208 1.0 233.1306 6.1486
1.4938 14.0 14000 1.3815 1.0 233.9394 6.3779
1.4244 15.0 15000 1.3555 1.0 230.5803 6.6075
1.3899 16.0 16000 1.3250 1.0 232.0901 6.7548
1.3261 17.0 17000 1.3030 1.0 236.8272 6.8750
1.318 18.0 18000 1.2778 1.0 242.0059 7.0348
1.2823 19.0 19000 1.2580 1.0 225.9980 7.1927
1.2327 20.0 20000 1.2459 1.0 225.6653 7.2674
1.221 21.0 21000 1.2248 1.0 229.3647 7.3795
1.1973 22.0 22000 1.2157 1.0 226.9892 7.5226
1.1598 23.0 23000 1.2060 1.0 233.4547 7.5880
1.1326 24.0 24000 1.1892 1.0 233.8419 7.6334
1.1368 25.0 25000 1.1863 1.0 231.8198 7.7023
1.0797 26.0 26000 1.1801 1.0 231.9607 7.7432
1.0741 27.0 27000 1.1717 1.0 231.4938 7.8516
1.0421 28.0 28000 1.1633 1.0 236.6683 7.8662
1.0371 29.0 29000 1.1614 1.0 229.6369 7.9111
1.0067 30.0 30000 1.1589 1.0 235.2480 7.8860
1.0046 31.0 31000 1.1500 1.0 238.6989 7.9480
0.9796 32.0 32000 1.1466 1.0 231.9186 8.0116
0.9428 33.0 33000 1.1442 1.0 240.4297 8.0983
0.9312 34.0 34000 1.1413 1.0 243.4610 8.0653
0.9176 35.0 35000 1.1344 1.0 246.0070 8.1290
0.9046 36.0 36000 1.1382 1.0 238.9377 8.1121
0.8904 37.0 37000 1.1300 1.0 246.0509 8.1359
0.8863 38.0 38000 1.1341 1.0 240.4348 8.2015
0.8637 39.0 39000 1.1340 1.0 242.6820 8.1498
0.8548 40.0 40000 1.1349 1.0 240.7980 8.2200
0.8398 41.0 41000 1.1320 1.0 246.5735 8.1993

Framework versions

  • Transformers 4.57.0
  • Pytorch 2.8.0+cu128
  • Datasets 4.2.0
  • Tokenizers 0.22.1
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