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wav2vec-large-en

This model is a fine-tuned version of facebook/wav2vec2-large on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 2.8842
  • Wer: 1.0

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-06
  • train_batch_size: 32
  • eval_batch_size: 8
  • seed: 42
  • optimizer: Use adamw_torch with betas=(0.9,0.999) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
  • lr_scheduler_type: linear
  • num_epochs: 30
  • mixed_precision_training: Native AMP

Training results

Training Loss Epoch Step Validation Loss Wer
No log 0.3521 50 6.2209 1.0
7.7114 0.7042 100 5.8125 1.0
7.7114 1.0563 150 5.5788 1.0
6.2512 1.4085 200 5.5017 1.0
6.2512 1.7606 250 5.0778 1.0
5.152 2.1127 300 3.0842 1.0
5.152 2.4648 350 2.9082 1.0
2.9862 2.8169 400 2.9040 1.0
2.9862 3.1690 450 2.9172 1.0
2.9346 3.5211 500 3.0595 1.0
2.9346 3.8732 550 2.8957 1.0
2.9037 4.2254 600 2.9380 1.0
2.9037 4.5775 650 2.8769 1.0
2.8894 4.9296 700 2.9011 1.0
2.8894 5.2817 750 2.8993 1.0
2.8886 5.6338 800 2.8978 1.0
2.8886 5.9859 850 2.8762 1.0
2.8831 6.3380 900 2.8726 1.0
2.8831 6.6901 950 2.8747 1.0
2.8772 7.0423 1000 3.0238 1.0
2.8772 7.3944 1050 2.8764 1.0
2.8913 7.7465 1100 2.8801 1.0
2.8913 8.0986 1150 2.8926 1.0
2.8677 8.4507 1200 2.9241 1.0
2.8677 8.8028 1250 2.9400 1.0
2.8713 9.1549 1300 2.9158 1.0
2.8713 9.5070 1350 2.8834 1.0
2.8702 9.8592 1400 2.8683 1.0
2.8702 10.2113 1450 2.8976 1.0
2.8817 10.5634 1500 2.9263 1.0
2.8817 10.9155 1550 2.8732 1.0
2.8657 11.2676 1600 2.9270 1.0
2.8657 11.6197 1650 2.8860 1.0
2.8618 11.9718 1700 2.8889 1.0
2.8618 12.3239 1750 2.8942 1.0
2.8846 12.6761 1800 2.8856 1.0
2.8846 13.0282 1850 2.9049 1.0
2.8635 13.3803 1900 2.8727 1.0
2.8635 13.7324 1950 2.8900 1.0
2.8634 14.0845 2000 2.9005 1.0
2.8634 14.4366 2050 2.9035 1.0
2.8624 14.7887 2100 2.9030 1.0
2.8624 15.1408 2150 2.8754 1.0
2.8627 15.4930 2200 2.8944 1.0
2.8627 15.8451 2250 2.8651 1.0
2.8595 16.1972 2300 2.9012 1.0
2.8595 16.5493 2350 2.9074 1.0
2.8591 16.9014 2400 2.8764 1.0
2.8591 17.2535 2450 2.8917 1.0
2.8615 17.6056 2500 2.8757 1.0
2.8615 17.9577 2550 2.8945 1.0
2.861 18.3099 2600 2.9263 1.0
2.861 18.6620 2650 2.8842 1.0

Framework versions

  • Transformers 4.46.2
  • Pytorch 2.5.1+cu121
  • Tokenizers 0.20.3
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