Regression_xlnet_NOaug_CustomLoss
This model is a fine-tuned version of xlnet-base-cased on an unknown dataset. It achieves the following results on the evaluation set:
- Train Loss: 0.1862
- Train Mae: 0.5631
- Train Mse: 0.4095
- Train R2-score: 0.8268
- Validation Loss: 0.1355
- Validation Mae: 0.5683
- Validation Mse: 0.3643
- Validation R2-score: 0.8811
- Epoch: 14
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': 'Adam', 'weight_decay': None, 'clipnorm': None, 'global_clipnorm': None, 'clipvalue': None, 'use_ema': False, 'ema_momentum': 0.99, 'ema_overwrite_frequency': None, 'jit_compile': True, 'is_legacy_optimizer': False, 'learning_rate': 1e-04, 'beta_1': 0.9, 'beta_2': 0.999, 'epsilon': 1e-07, 'amsgrad': False}
- training_precision: float32
Training results
Train Loss | Train Mae | Train Mse | Train R2-score | Validation Loss | Validation Mae | Validation Mse | Validation R2-score | Epoch |
---|---|---|---|---|---|---|---|---|
0.1966 | 0.5177 | 0.3647 | 0.3590 | 0.1412 | 0.6460 | 0.4895 | 0.8850 | 0 |
0.1804 | 0.5606 | 0.4181 | 0.8105 | 0.1540 | 0.6614 | 0.5259 | 0.8820 | 1 |
0.2037 | 0.5676 | 0.4319 | 0.6885 | 0.1399 | 0.6439 | 0.4849 | 0.8849 | 2 |
0.1833 | 0.5499 | 0.3954 | 0.8256 | 0.1804 | 0.6845 | 0.5879 | 0.8760 | 3 |
0.1627 | 0.5412 | 0.3866 | 0.8022 | 0.1661 | 0.6729 | 0.5558 | 0.8793 | 4 |
0.1822 | 0.5677 | 0.4178 | 0.7449 | 0.1327 | 0.6311 | 0.4580 | 0.8861 | 5 |
0.2117 | 0.5798 | 0.4520 | 0.5186 | 0.1282 | 0.6187 | 0.4345 | 0.8866 | 6 |
0.1843 | 0.5544 | 0.3998 | 0.5283 | 0.1272 | 0.6142 | 0.4265 | 0.8866 | 7 |
0.2074 | 0.5906 | 0.4639 | 0.6729 | 0.1269 | 0.6127 | 0.4239 | 0.8865 | 8 |
0.1756 | 0.5666 | 0.4032 | 0.8054 | 0.1272 | 0.5909 | 0.3908 | 0.8850 | 9 |
0.1706 | 0.5452 | 0.3948 | 0.7999 | 0.1282 | 0.5862 | 0.3845 | 0.8844 | 10 |
0.1727 | 0.5499 | 0.3928 | 0.8471 | 0.1453 | 0.6513 | 0.5021 | 0.8840 | 11 |
0.1688 | 0.5467 | 0.3884 | 0.3339 | 0.1777 | 0.6823 | 0.5817 | 0.8766 | 12 |
0.1625 | 0.5476 | 0.3918 | 0.5804 | 0.1483 | 0.6541 | 0.5098 | 0.8833 | 13 |
0.1862 | 0.5631 | 0.4095 | 0.8268 | 0.1355 | 0.5683 | 0.3643 | 0.8811 | 14 |
Framework versions
- Transformers 4.28.1
- TensorFlow 2.12.0
- Datasets 2.12.0
- Tokenizers 0.13.3
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