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End of training

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README.md CHANGED
@@ -22,7 +22,7 @@ model-index:
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  metrics:
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  - name: Wer
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  type: wer
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- value: 100.0
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  ---
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  <!-- This model card has been generated automatically according to the information the Trainer had access to. You
@@ -32,8 +32,8 @@ should probably proofread and complete it, then remove this comment. -->
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  This model is a fine-tuned version of [facebook/wav2vec2-xls-r-300m](https://huggingface.co/facebook/wav2vec2-xls-r-300m) on the ml-superb-subset dataset.
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  It achieves the following results on the evaluation set:
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- - Loss: 3.7471
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- - Wer: 100.0
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  ## Model description
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@@ -52,7 +52,7 @@ More information needed
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  ### Training hyperparameters
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  The following hyperparameters were used during training:
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- - learning_rate: 0.005
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  - train_batch_size: 64
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  - eval_batch_size: 8
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  - seed: 42
@@ -66,58 +66,58 @@ The following hyperparameters were used during training:
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  ### Training results
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- | Training Loss | Epoch | Step | Validation Loss | Wer |
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- |:-------------:|:--------:|:----:|:---------------:|:-----:|
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- | 17.1482 | 2.2222 | 10 | 9.2733 | 100.0 |
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- | 4.0207 | 4.4444 | 20 | 3.9380 | 100.0 |
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- | 5.0108 | 6.6667 | 30 | 4.5177 | 100.0 |
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- | 5.4723 | 8.8889 | 40 | 4.1051 | 100.0 |
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- | 3.9167 | 11.1111 | 50 | 3.8586 | 100.0 |
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- | 3.8376 | 13.3333 | 60 | 3.8304 | 100.0 |
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- | 3.8317 | 15.5556 | 70 | 3.8322 | 100.0 |
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- | 3.8352 | 17.7778 | 80 | 3.8165 | 100.0 |
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- | 3.8337 | 20.0 | 90 | 3.8249 | 100.0 |
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- | 3.8231 | 22.2222 | 100 | 3.8129 | 100.0 |
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- | 3.8169 | 24.4444 | 110 | 3.8217 | 100.0 |
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- | 3.8195 | 26.6667 | 120 | 3.8120 | 100.0 |
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- | 3.8186 | 28.8889 | 130 | 3.8160 | 100.0 |
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- | 3.8271 | 31.1111 | 140 | 3.8150 | 100.0 |
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- | 3.8273 | 33.3333 | 150 | 3.8134 | 100.0 |
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- | 3.8186 | 35.5556 | 160 | 3.8138 | 100.0 |
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- | 3.816 | 37.7778 | 170 | 3.8132 | 100.0 |
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- | 3.817 | 40.0 | 180 | 3.8187 | 100.0 |
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- | 3.8196 | 42.2222 | 190 | 3.8115 | 100.0 |
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- | 3.8157 | 44.4444 | 200 | 3.8131 | 100.0 |
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- | 3.814 | 46.6667 | 210 | 3.8158 | 100.0 |
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- | 3.8198 | 48.8889 | 220 | 3.8073 | 100.0 |
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- | 3.8169 | 51.1111 | 230 | 3.8036 | 100.0 |
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- | 3.7913 | 53.3333 | 240 | 3.7904 | 100.0 |
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- | 3.791 | 55.5556 | 250 | 3.7796 | 100.0 |
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- | 3.765 | 57.7778 | 260 | 3.7673 | 100.0 |
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- | 3.768 | 60.0 | 270 | 3.7672 | 100.0 |
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- | 3.7594 | 62.2222 | 280 | 3.7594 | 100.0 |
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- | 3.7488 | 64.4444 | 290 | 3.7601 | 100.0 |
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- | 3.7506 | 66.6667 | 300 | 3.7583 | 100.0 |
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- | 3.7408 | 68.8889 | 310 | 3.7580 | 100.0 |
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- | 3.749 | 71.1111 | 320 | 3.7630 | 100.0 |
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- | 3.7575 | 73.3333 | 330 | 3.7568 | 100.0 |
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- | 3.7517 | 75.5556 | 340 | 3.7555 | 100.0 |
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- | 3.758 | 77.7778 | 350 | 3.7536 | 100.0 |
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- | 3.7491 | 80.0 | 360 | 3.7546 | 100.0 |
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- | 3.7288 | 82.2222 | 370 | 3.7563 | 100.0 |
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- | 3.7321 | 84.4444 | 380 | 3.7519 | 100.0 |
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- | 3.7326 | 86.6667 | 390 | 3.7516 | 100.0 |
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- | 3.7373 | 88.8889 | 400 | 3.7502 | 100.0 |
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- | 3.7348 | 91.1111 | 410 | 3.7494 | 100.0 |
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- | 3.7312 | 93.3333 | 420 | 3.7489 | 100.0 |
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- | 3.732 | 95.5556 | 430 | 3.7477 | 100.0 |
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- | 3.7431 | 97.7778 | 440 | 3.7489 | 100.0 |
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- | 3.737 | 100.0 | 450 | 3.7474 | 100.0 |
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- | 3.7364 | 102.2222 | 460 | 3.7479 | 100.0 |
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- | 3.7265 | 104.4444 | 470 | 3.7478 | 100.0 |
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- | 3.7339 | 106.6667 | 480 | 3.7471 | 100.0 |
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- | 3.731 | 108.8889 | 490 | 3.7470 | 100.0 |
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- | 3.736 | 111.1111 | 500 | 3.7471 | 100.0 |
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  ### Framework versions
 
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  metrics:
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  - name: Wer
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  type: wer
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+ value: 97.41641337386018
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  ---
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  <!-- This model card has been generated automatically according to the information the Trainer had access to. You
 
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  This model is a fine-tuned version of [facebook/wav2vec2-xls-r-300m](https://huggingface.co/facebook/wav2vec2-xls-r-300m) on the ml-superb-subset dataset.
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  It achieves the following results on the evaluation set:
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+ - Loss: 2.8917
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+ - Wer: 97.4164
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  ## Model description
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  ### Training hyperparameters
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  The following hyperparameters were used during training:
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+ - learning_rate: 0.001
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  - train_batch_size: 64
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  - eval_batch_size: 8
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  - seed: 42
 
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  ### Training results
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+ | Training Loss | Epoch | Step | Validation Loss | Wer |
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+ |:-------------:|:--------:|:----:|:---------------:|:--------:|
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+ | 22.5796 | 2.2222 | 10 | 17.1583 | 100.0 |
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+ | 9.5568 | 4.4444 | 20 | 7.4797 | 100.0 |
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+ | 4.3875 | 6.6667 | 30 | 3.9841 | 100.0 |
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+ | 3.8631 | 8.8889 | 40 | 3.8281 | 100.0 |
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+ | 3.8298 | 11.1111 | 50 | 3.8117 | 100.0 |
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+ | 3.7925 | 13.3333 | 60 | 3.7866 | 100.0 |
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+ | 3.802 | 15.5556 | 70 | 3.7763 | 100.0 |
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+ | 3.7845 | 17.7778 | 80 | 3.7681 | 100.0 |
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+ | 3.7732 | 20.0 | 90 | 3.7627 | 100.0 |
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+ | 3.7547 | 22.2222 | 100 | 3.7625 | 100.0 |
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+ | 3.7471 | 24.4444 | 110 | 3.7588 | 100.0 |
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+ | 3.7378 | 26.6667 | 120 | 3.7244 | 100.0 |
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+ | 3.7278 | 28.8889 | 130 | 3.7337 | 100.0 |
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+ | 3.71 | 31.1111 | 140 | 3.7188 | 100.0 |
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+ | 3.6966 | 33.3333 | 150 | 3.7076 | 100.0 |
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+ | 3.6811 | 35.5556 | 160 | 3.6916 | 100.0 |
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+ | 3.6741 | 37.7778 | 170 | 3.6898 | 100.0 |
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+ | 3.6337 | 40.0 | 180 | 3.6486 | 100.0 |
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+ | 3.5766 | 42.2222 | 190 | 3.5913 | 100.0 |
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+ | 3.5251 | 44.4444 | 200 | 3.5318 | 100.0 |
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+ | 3.4533 | 46.6667 | 210 | 3.4549 | 100.0 |
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+ | 3.3664 | 48.8889 | 220 | 3.3877 | 100.0 |
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+ | 3.2963 | 51.1111 | 230 | 3.2852 | 100.0 |
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+ | 3.1237 | 53.3333 | 240 | 3.1187 | 100.0 |
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+ | 2.9356 | 55.5556 | 250 | 2.9620 | 100.0 |
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+ | 2.7107 | 57.7778 | 260 | 2.7665 | 100.0 |
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+ | 2.477 | 60.0 | 270 | 2.5155 | 99.3921 |
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+ | 2.1786 | 62.2222 | 280 | 2.2953 | 98.4043 |
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+ | 1.897 | 64.4444 | 290 | 2.1781 | 97.5684 |
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+ | 1.6863 | 66.6667 | 300 | 2.1825 | 97.5684 |
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+ | 1.4954 | 68.8889 | 310 | 2.1240 | 96.2766 |
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+ | 1.3132 | 71.1111 | 320 | 2.1476 | 94.3769 |
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+ | 1.1333 | 73.3333 | 330 | 2.2088 | 95.6687 |
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+ | 0.9827 | 75.5556 | 340 | 2.2591 | 94.9088 |
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+ | 0.9019 | 77.7778 | 350 | 2.4481 | 101.0638 |
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+ | 0.7936 | 80.0 | 360 | 2.5467 | 103.4195 |
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+ | 0.7015 | 82.2222 | 370 | 2.5279 | 95.5927 |
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+ | 0.631 | 84.4444 | 380 | 2.6338 | 95.8207 |
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+ | 0.5849 | 86.6667 | 390 | 2.6840 | 96.8085 |
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+ | 0.5549 | 88.8889 | 400 | 2.7048 | 97.4164 |
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+ | 0.5137 | 91.1111 | 410 | 2.7910 | 96.0486 |
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+ | 0.4905 | 93.3333 | 420 | 2.8070 | 98.7842 |
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+ | 0.4603 | 95.5556 | 430 | 2.8552 | 95.2888 |
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+ | 0.457 | 97.7778 | 440 | 2.8382 | 95.8207 |
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+ | 0.442 | 100.0 | 450 | 2.8831 | 98.2523 |
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+ | 0.4437 | 102.2222 | 460 | 2.8800 | 97.5684 |
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+ | 0.4346 | 104.4444 | 470 | 2.8805 | 97.7964 |
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+ | 0.4341 | 106.6667 | 480 | 2.8864 | 97.6444 |
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+ | 0.4319 | 108.8889 | 490 | 2.8911 | 97.3404 |
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+ | 0.4403 | 111.1111 | 500 | 2.8917 | 97.4164 |
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  ### Framework versions
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