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End of training

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README.md CHANGED
@@ -9,23 +9,23 @@ metrics:
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  - recall
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  - f1
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  model-index:
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- - name: AUTH_300524_epoch_1
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  results: []
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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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  should probably proofread and complete it, then remove this comment. -->
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- # AUTH_300524_epoch_1
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  This model is a fine-tuned version of [projecte-aina/roberta-base-ca-v2-cased-te](https://huggingface.co/projecte-aina/roberta-base-ca-v2-cased-te) on the None dataset.
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  It achieves the following results on the evaluation set:
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- - Loss: 0.5295
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- - Accuracy: 0.8617
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- - Precision: 0.8629
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- - Recall: 0.8617
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- - F1: 0.8616
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- - Ratio: 0.4719
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  ## Model description
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@@ -61,34 +61,34 @@ The following hyperparameters were used during training:
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  | Training Loss | Epoch | Step | Validation Loss | Accuracy | Precision | Recall | F1 | Ratio |
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  |:-------------:|:------:|:----:|:---------------:|:--------:|:---------:|:------:|:------:|:------:|
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- | 3.2615 | 0.0354 | 10 | 1.7603 | 0.5451 | 0.5578 | 0.5451 | 0.5186 | 0.7345 |
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- | 1.3887 | 0.0708 | 20 | 0.9479 | 0.5992 | 0.6005 | 0.5992 | 0.5979 | 0.4439 |
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- | 0.9044 | 0.1062 | 30 | 0.7923 | 0.7004 | 0.7013 | 0.7004 | 0.7001 | 0.4669 |
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- | 0.8048 | 0.1416 | 40 | 0.7505 | 0.7485 | 0.7728 | 0.7485 | 0.7428 | 0.6493 |
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- | 0.7261 | 0.1770 | 50 | 0.6971 | 0.7866 | 0.7866 | 0.7866 | 0.7866 | 0.4990 |
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- | 0.7067 | 0.2124 | 60 | 0.6697 | 0.7916 | 0.7917 | 0.7916 | 0.7916 | 0.5080 |
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- | 0.6154 | 0.2478 | 70 | 0.6513 | 0.7936 | 0.7959 | 0.7936 | 0.7932 | 0.4559 |
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- | 0.6239 | 0.2832 | 80 | 0.6145 | 0.8156 | 0.8158 | 0.8156 | 0.8156 | 0.5120 |
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- | 0.6029 | 0.3186 | 90 | 0.6042 | 0.8277 | 0.8277 | 0.8277 | 0.8277 | 0.5020 |
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- | 0.6194 | 0.3540 | 100 | 0.6134 | 0.8176 | 0.8256 | 0.8176 | 0.8165 | 0.4218 |
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- | 0.6148 | 0.3894 | 110 | 0.5833 | 0.8277 | 0.8284 | 0.8277 | 0.8276 | 0.4760 |
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- | 0.5767 | 0.4248 | 120 | 0.5999 | 0.8307 | 0.8315 | 0.8307 | 0.8306 | 0.4749 |
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- | 0.582 | 0.4602 | 130 | 0.6074 | 0.8357 | 0.8371 | 0.8357 | 0.8355 | 0.4679 |
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- | 0.6211 | 0.4956 | 140 | 0.5802 | 0.8407 | 0.8411 | 0.8407 | 0.8406 | 0.4830 |
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- | 0.6363 | 0.5310 | 150 | 0.5904 | 0.8226 | 0.8328 | 0.8226 | 0.8213 | 0.4128 |
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- | 0.6346 | 0.5664 | 160 | 0.5616 | 0.8557 | 0.8565 | 0.8557 | 0.8556 | 0.5240 |
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- | 0.6192 | 0.6018 | 170 | 0.5549 | 0.8517 | 0.8530 | 0.8517 | 0.8516 | 0.4699 |
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- | 0.5788 | 0.6372 | 180 | 0.5537 | 0.8557 | 0.8561 | 0.8557 | 0.8557 | 0.4840 |
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- | 0.5838 | 0.6726 | 190 | 0.5720 | 0.8397 | 0.8473 | 0.8397 | 0.8388 | 0.4259 |
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- | 0.5777 | 0.7080 | 200 | 0.5463 | 0.8567 | 0.8572 | 0.8567 | 0.8567 | 0.4810 |
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- | 0.5678 | 0.7434 | 210 | 0.5440 | 0.8587 | 0.8588 | 0.8587 | 0.8587 | 0.5090 |
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- | 0.6074 | 0.7788 | 220 | 0.5410 | 0.8597 | 0.8628 | 0.8597 | 0.8594 | 0.4539 |
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- | 0.5599 | 0.8142 | 230 | 0.5437 | 0.8567 | 0.8618 | 0.8567 | 0.8562 | 0.4409 |
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- | 0.5559 | 0.8496 | 240 | 0.5348 | 0.8627 | 0.8628 | 0.8627 | 0.8627 | 0.4930 |
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- | 0.5769 | 0.8850 | 250 | 0.5345 | 0.8677 | 0.8677 | 0.8677 | 0.8677 | 0.5 |
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- | 0.6611 | 0.9204 | 260 | 0.5293 | 0.8647 | 0.8654 | 0.8647 | 0.8647 | 0.4790 |
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- | 0.5281 | 0.9558 | 270 | 0.5297 | 0.8617 | 0.8630 | 0.8617 | 0.8616 | 0.4699 |
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- | 0.5606 | 0.9912 | 280 | 0.5295 | 0.8617 | 0.8629 | 0.8617 | 0.8616 | 0.4719 |
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  ### Framework versions
 
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  - recall
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  - f1
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  model-index:
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+ - name: AUTH_300524_epoch_2
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  results: []
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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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  should probably proofread and complete it, then remove this comment. -->
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+ # AUTH_300524_epoch_2
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  This model is a fine-tuned version of [projecte-aina/roberta-base-ca-v2-cased-te](https://huggingface.co/projecte-aina/roberta-base-ca-v2-cased-te) on the None dataset.
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  It achieves the following results on the evaluation set:
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+ - Loss: 0.4819
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+ - Accuracy: 0.8928
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+ - Precision: 0.8938
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+ - Recall: 0.8928
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+ - F1: 0.8927
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+ - Ratio: 0.4749
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  ## Model description
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  | Training Loss | Epoch | Step | Validation Loss | Accuracy | Precision | Recall | F1 | Ratio |
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  |:-------------:|:------:|:----:|:---------------:|:--------:|:---------:|:------:|:------:|:------:|
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+ | 0.5512 | 0.0354 | 10 | 0.5357 | 0.8677 | 0.8682 | 0.8677 | 0.8677 | 0.5180 |
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+ | 0.5112 | 0.0708 | 20 | 0.5359 | 0.8667 | 0.8673 | 0.8667 | 0.8667 | 0.4810 |
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+ | 0.5633 | 0.1062 | 30 | 0.5222 | 0.8707 | 0.8709 | 0.8707 | 0.8707 | 0.4890 |
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+ | 0.5473 | 0.1416 | 40 | 0.5369 | 0.8597 | 0.8646 | 0.8597 | 0.8592 | 0.4419 |
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+ | 0.5315 | 0.1770 | 50 | 0.5152 | 0.8747 | 0.8757 | 0.8747 | 0.8747 | 0.4749 |
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+ | 0.5432 | 0.2124 | 60 | 0.5156 | 0.8768 | 0.8777 | 0.8768 | 0.8767 | 0.4749 |
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+ | 0.502 | 0.2478 | 70 | 0.5150 | 0.8758 | 0.8779 | 0.8758 | 0.8756 | 0.4619 |
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+ | 0.5324 | 0.2832 | 80 | 0.5128 | 0.8747 | 0.8748 | 0.8747 | 0.8747 | 0.4990 |
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+ | 0.4857 | 0.3186 | 90 | 0.5242 | 0.8778 | 0.8805 | 0.8778 | 0.8775 | 0.5421 |
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+ | 0.504 | 0.3540 | 100 | 0.5178 | 0.8747 | 0.8771 | 0.8747 | 0.8746 | 0.4609 |
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+ | 0.5454 | 0.3894 | 110 | 0.5061 | 0.8778 | 0.8833 | 0.8778 | 0.8773 | 0.4399 |
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+ | 0.5055 | 0.4248 | 120 | 0.5242 | 0.8697 | 0.8724 | 0.8697 | 0.8695 | 0.5421 |
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+ | 0.5107 | 0.4602 | 130 | 0.5273 | 0.8687 | 0.8726 | 0.8687 | 0.8684 | 0.4489 |
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+ | 0.5139 | 0.4956 | 140 | 0.5175 | 0.8717 | 0.8719 | 0.8717 | 0.8717 | 0.5100 |
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+ | 0.5653 | 0.5310 | 150 | 0.5092 | 0.8727 | 0.8773 | 0.8727 | 0.8724 | 0.4449 |
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+ | 0.5367 | 0.5664 | 160 | 0.4930 | 0.8868 | 0.8868 | 0.8868 | 0.8868 | 0.4930 |
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+ | 0.5208 | 0.6018 | 170 | 0.4956 | 0.8898 | 0.8903 | 0.8898 | 0.8897 | 0.4820 |
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+ | 0.4634 | 0.6372 | 180 | 0.5121 | 0.8848 | 0.8879 | 0.8848 | 0.8845 | 0.4549 |
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+ | 0.5308 | 0.6726 | 190 | 0.5178 | 0.8768 | 0.8814 | 0.8768 | 0.8764 | 0.4449 |
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+ | 0.5046 | 0.7080 | 200 | 0.4948 | 0.8888 | 0.8891 | 0.8888 | 0.8888 | 0.4850 |
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+ | 0.4943 | 0.7434 | 210 | 0.4887 | 0.8908 | 0.8911 | 0.8908 | 0.8908 | 0.4850 |
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+ | 0.5496 | 0.7788 | 220 | 0.4887 | 0.8868 | 0.8872 | 0.8868 | 0.8867 | 0.4830 |
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+ | 0.518 | 0.8142 | 230 | 0.4912 | 0.8828 | 0.8854 | 0.8828 | 0.8826 | 0.4589 |
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+ | 0.5266 | 0.8496 | 240 | 0.4870 | 0.8878 | 0.8885 | 0.8878 | 0.8877 | 0.4780 |
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+ | 0.5239 | 0.8850 | 250 | 0.4852 | 0.8868 | 0.8870 | 0.8868 | 0.8868 | 0.4870 |
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+ | 0.5895 | 0.9204 | 260 | 0.4821 | 0.8928 | 0.8936 | 0.8928 | 0.8927 | 0.4770 |
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+ | 0.4876 | 0.9558 | 270 | 0.4819 | 0.8938 | 0.8949 | 0.8938 | 0.8937 | 0.4739 |
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+ | 0.5002 | 0.9912 | 280 | 0.4819 | 0.8938 | 0.8949 | 0.8938 | 0.8937 | 0.4739 |
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  ### Framework versions
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