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bert-large-uncased-finetuned-infovqa
This model is a fine-tuned version of bert-large-uncased on an unknown dataset. It achieves the following results on the evaluation set:
- Loss: 6.3170
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: 2e-05
- train_batch_size: 2
- eval_batch_size: 2
- seed: 250500
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 6
Training results
Training Loss | Epoch | Step | Validation Loss |
---|---|---|---|
3.7861 | 0.12 | 1000 | 3.2778 |
3.2186 | 0.23 | 2000 | 3.0658 |
2.8504 | 0.35 | 3000 | 3.0456 |
2.8621 | 0.46 | 4000 | 2.8758 |
2.7851 | 0.58 | 5000 | 2.8680 |
2.8016 | 0.69 | 6000 | 2.9244 |
2.7592 | 0.81 | 7000 | 2.7735 |
2.5737 | 0.93 | 8000 | 2.7640 |
2.3493 | 1.04 | 9000 | 2.7257 |
2.1041 | 1.16 | 10000 | 2.8442 |
2.1713 | 1.27 | 11000 | 2.7723 |
2.0594 | 1.39 | 12000 | 2.9982 |
2.1825 | 1.5 | 13000 | 2.8272 |
2.2486 | 1.62 | 14000 | 2.8897 |
2.097 | 1.74 | 15000 | 2.8557 |
2.1645 | 1.85 | 16000 | 2.6342 |
2.15 | 1.97 | 17000 | 2.8680 |
1.5662 | 2.08 | 18000 | 3.2126 |
1.6168 | 2.2 | 19000 | 3.1646 |
1.5886 | 2.32 | 20000 | 3.3139 |
1.6539 | 2.43 | 21000 | 3.2610 |
1.6486 | 2.55 | 22000 | 3.3144 |
1.637 | 2.66 | 23000 | 3.0437 |
1.7186 | 2.78 | 24000 | 2.9936 |
1.7543 | 2.89 | 25000 | 3.1641 |
1.5301 | 3.01 | 26000 | 4.0560 |
1.1436 | 3.13 | 27000 | 4.0116 |
1.1902 | 3.24 | 28000 | 4.0240 |
1.2728 | 3.36 | 29000 | 4.3068 |
1.2586 | 3.47 | 30000 | 3.7894 |
1.3164 | 3.59 | 31000 | 3.9242 |
1.3093 | 3.7 | 32000 | 4.0444 |
1.2812 | 3.82 | 33000 | 4.1779 |
1.3165 | 3.94 | 34000 | 3.6633 |
0.8357 | 4.05 | 35000 | 5.8137 |
0.9583 | 4.17 | 36000 | 5.3305 |
0.9135 | 4.28 | 37000 | 5.4973 |
1.0011 | 4.4 | 38000 | 5.0349 |
0.9553 | 4.51 | 39000 | 5.2086 |
1.0182 | 4.63 | 40000 | 5.1197 |
0.9569 | 4.75 | 41000 | 5.4579 |
0.9437 | 4.86 | 42000 | 5.4467 |
0.9791 | 4.98 | 43000 | 4.7657 |
0.648 | 5.09 | 44000 | 6.5780 |
0.7528 | 5.21 | 45000 | 6.2827 |
0.7247 | 5.33 | 46000 | 6.8500 |
0.702 | 5.44 | 47000 | 6.4572 |
0.6786 | 5.56 | 48000 | 6.5462 |
0.7272 | 5.67 | 49000 | 6.2406 |
0.6778 | 5.79 | 50000 | 6.4727 |
0.6446 | 5.9 | 51000 | 6.3170 |
Framework versions
- Transformers 4.10.0
- Pytorch 1.8.0+cu101
- Datasets 1.11.0
- Tokenizers 0.10.3
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