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whisper_input_decoder_equal_labels_no_force__0060

This model is a fine-tuned version of openai/whisper-tiny on an unknown dataset. It achieves the following results on the evaluation set:

  • Train Loss: 0.0000
  • Train Accuracy: 0.0362
  • Train Wermet: 0.0000
  • Validation Loss: 0.0003
  • Validation Accuracy: 0.0266
  • Validation Wermet: 0.0001
  • Epoch: 59

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:

  • optimizer: {'name': 'AdamWeightDecay', 'learning_rate': 1e-05, 'decay': 0.0, 'beta_1': 0.9, 'beta_2': 0.999, 'epsilon': 1e-07, 'amsgrad': False, 'weight_decay_rate': 0.01}
  • training_precision: float32

Training results

Train Loss Train Accuracy Train Wermet Validation Loss Validation Accuracy Validation Wermet Epoch
0.7688 0.0332 32.0424 0.0164 0.0265 57.8712 0
0.0114 0.0362 31.1067 0.0062 0.0266 54.8371 1
0.0048 0.0362 27.0610 0.0030 0.0266 50.1428 2
0.0027 0.0362 24.9672 0.0018 0.0266 48.0741 3
0.0018 0.0362 23.1500 0.0013 0.0266 44.9304 4
0.0013 0.0362 21.5445 0.0010 0.0266 42.3508 5
0.0009 0.0362 20.2775 0.0008 0.0266 40.4061 6
0.0007 0.0362 19.5082 0.0006 0.0266 38.2329 7
0.0005 0.0362 17.9967 0.0005 0.0266 35.9761 8
0.0004 0.0362 16.8461 0.0004 0.0266 34.1220 9
0.0003 0.0362 15.8373 0.0004 0.0266 32.0054 10
0.0003 0.0362 14.7685 0.0004 0.0266 29.6994 11
0.0002 0.0362 13.4142 0.0003 0.0266 27.1796 12
0.0002 0.0362 12.4809 0.0003 0.0266 25.3421 13
0.0002 0.0362 11.2286 0.0003 0.0266 23.1619 14
0.0001 0.0362 10.2408 0.0003 0.0266 21.3348 15
0.0001 0.0362 9.5439 0.0002 0.0266 20.1758 16
0.0001 0.0362 8.7578 0.0002 0.0266 18.3977 17
0.0001 0.0362 7.8698 0.0002 0.0266 16.2156 18
0.0001 0.0362 7.0007 0.0002 0.0266 14.7919 19
0.0001 0.0362 6.2610 0.0002 0.0266 13.0212 20
0.0001 0.0362 5.5103 0.0002 0.0266 11.5619 21
0.0000 0.0362 4.9163 0.0002 0.0266 10.4626 22
0.0000 0.0362 4.3166 0.0002 0.0266 9.2446 23
0.0000 0.0362 3.7524 0.0002 0.0266 7.7431 24
0.0000 0.0362 3.2129 0.0002 0.0266 6.6332 25
0.0000 0.0362 2.7739 0.0002 0.0266 5.7615 26
0.0000 0.0362 2.3764 0.0002 0.0266 4.9058 27
0.0000 0.0362 1.9780 0.0002 0.0266 4.0666 28
0.0000 0.0362 1.6255 0.0002 0.0266 3.3591 29
0.0000 0.0362 1.3291 0.0002 0.0266 2.7223 30
0.0000 0.0362 1.1012 0.0002 0.0266 2.1768 31
0.0000 0.0362 0.9017 0.0002 0.0266 1.7957 32
0.0000 0.0362 0.7347 0.0002 0.0266 1.3240 33
0.0000 0.0362 0.5807 0.0002 0.0266 0.9770 34
0.0000 0.0362 0.4562 0.0002 0.0266 0.7842 35
0.0000 0.0362 0.3738 0.0002 0.0266 0.6098 36
0.0000 0.0362 0.2925 0.0002 0.0266 0.4481 37
0.0000 0.0362 0.2142 0.0002 0.0266 0.3331 38
0.0000 0.0362 0.1491 0.0002 0.0266 0.2229 39
0.0000 0.0362 0.0935 0.0002 0.0266 0.1604 40
0.0000 0.0362 0.0588 0.0002 0.0266 0.1018 41
0.0000 0.0362 0.0421 0.0002 0.0266 0.0653 42
0.0000 0.0362 0.0284 0.0002 0.0266 0.0364 43
0.0000 0.0362 0.0172 0.0002 0.0266 0.0210 44
0.0000 0.0362 0.0048 0.0002 0.0266 0.0105 45
0.0000 0.0362 0.0006 0.0002 0.0266 0.0031 46
0.0000 0.0362 0.0000 0.0002 0.0266 0.0004 47
0.0000 0.0362 0.0000 0.0002 0.0266 0.0001 48
0.0000 0.0362 0.0000 0.0002 0.0266 0.0001 49
0.0000 0.0362 0.0000 0.0002 0.0266 0.0001 50
0.0000 0.0362 0.0000 0.0002 0.0266 0.0001 51
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 52
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 53
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 54
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 55
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 56
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 57
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 58
0.0000 0.0362 0.0000 0.0003 0.0266 0.0001 59

Framework versions

  • Transformers 4.33.0.dev0
  • TensorFlow 2.13.0
  • Tokenizers 0.13.3
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