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nyankole_wav2vec2

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

  • Loss: 2.8606
  • 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: 0.0003
  • train_batch_size: 8
  • eval_batch_size: 8
  • seed: 42
  • gradient_accumulation_steps: 2
  • total_train_batch_size: 16
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_steps: 55
  • num_epochs: 30
  • mixed_precision_training: Native AMP

Training results

Training Loss Epoch Step Validation Loss Wer
7.4272 0.4739 50 2.9131 1.0
2.8729 0.9479 100 2.8567 1.0
2.9027 1.4218 150 2.9014 1.0
2.8676 1.8957 200 2.8607 1.0
2.8484 2.3697 250 2.8482 1.0
2.8807 2.8436 300 2.8553 1.0
2.8513 3.3175 350 2.8731 1.0
2.8489 3.7915 400 2.8524 1.0
2.841 4.2654 450 2.8468 1.0
2.9182 4.7393 500 2.8572 1.0
2.8441 5.2133 550 2.8642 1.0
2.8486 5.6872 600 2.8690 1.0
2.8455 6.1611 650 2.8663 1.0
2.845 6.6351 700 2.8611 1.0
2.856 7.1090 750 2.8781 1.0
2.8429 7.5829 800 2.8612 1.0
2.8456 8.0569 850 2.8555 1.0
2.8465 8.5308 900 2.8596 1.0
2.8465 9.0047 950 2.8507 1.0
2.848 9.4787 1000 2.8527 1.0
2.8441 9.9526 1050 2.8702 1.0
2.8452 10.4265 1100 2.8782 1.0
2.8446 10.9005 1150 2.8736 1.0
2.8433 11.3744 1200 2.8541 1.0
2.842 11.8483 1250 2.8678 1.0
2.8442 12.3223 1300 2.8559 1.0
2.8473 12.7962 1350 2.8538 1.0
2.843 13.2701 1400 2.8592 1.0
2.8429 13.7441 1450 2.8571 1.0
2.8431 14.2180 1500 2.8860 1.0
2.8428 14.6919 1550 2.8611 1.0
2.8429 15.1659 1600 2.8763 1.0
2.8387 15.6398 1650 2.8637 1.0
2.8503 16.1137 1700 2.8588 1.0
2.8463 16.5877 1750 2.8560 1.0
2.8414 17.0616 1800 2.8550 1.0
2.8417 17.5355 1850 2.8582 1.0
2.8438 18.0095 1900 2.8502 1.0
2.8497 18.4834 1950 2.8825 1.0
2.8377 18.9573 2000 2.8622 1.0
2.8412 19.4313 2050 2.8711 1.0
2.8405 19.9052 2100 2.8786 1.0
2.8419 20.3791 2150 2.8467 1.0
2.8426 20.8531 2200 2.8627 1.0
2.8454 21.3270 2250 2.8640 1.0
2.8397 21.8009 2300 2.8600 1.0
2.8405 22.2749 2350 2.8716 1.0
2.8413 22.7488 2400 2.8498 1.0
2.8454 23.2227 2450 2.8647 1.0
2.8415 23.6967 2500 2.8727 1.0
2.8381 24.1706 2550 2.8600 1.0
2.8405 24.6445 2600 2.8604 1.0
2.8442 25.1185 2650 2.8543 1.0
2.836 25.5924 2700 2.8613 1.0
2.8479 26.0664 2750 2.8664 1.0
2.842 26.5403 2800 2.8574 1.0
2.8406 27.0142 2850 2.8558 1.0
2.8435 27.4882 2900 2.8587 1.0
2.8387 27.9621 2950 2.8568 1.0
2.8442 28.4360 3000 2.8573 1.0
2.8365 28.9100 3050 2.8591 1.0
2.8428 29.3839 3100 2.8621 1.0
2.8386 29.8578 3150 2.8606 1.0

Framework versions

  • Transformers 4.41.2
  • Pytorch 2.1.2
  • Datasets 2.19.2
  • Tokenizers 0.19.1
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