right_as_train_context_roberta-large_20e
This model is a fine-tuned version of FacebookAI/roberta-large on an unknown dataset. It achieves the following results on the evaluation set:
- Loss: 2.0698
- Val Accuracy: 0.8315
- Val Precision Macro: 0.8251
- Val Recall Macro: 0.8236
- Val F1 Macro: 0.8243
- Val Precision Weighted: 0.8315
- Val Recall Weighted: 0.8315
- Val F1 Weighted: 0.8315
Model description
More information needed
Intended uses & limitations
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Training and evaluation data
More information needed
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
- learning_rate: 5e-06
- train_batch_size: 16
- eval_batch_size: 8
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 20
- mixed_precision_training: Native AMP
Training results
Training Loss | Epoch | Step | Validation Loss | Val Accuracy | Val Precision Macro | Val Recall Macro | Val F1 Macro | Val Precision Weighted | Val Recall Weighted | Val F1 Weighted |
---|---|---|---|---|---|---|---|---|---|---|
0.4675 | 1.0 | 4017 | 0.5295 | 0.7930 | 0.7883 | 0.7814 | 0.7832 | 0.7950 | 0.7930 | 0.7926 |
0.3484 | 2.0 | 8034 | 0.5219 | 0.8106 | 0.8024 | 0.8005 | 0.8012 | 0.8109 | 0.8106 | 0.8105 |
0.2493 | 3.0 | 12051 | 0.6031 | 0.8187 | 0.8089 | 0.8131 | 0.8108 | 0.8197 | 0.8187 | 0.8190 |
0.1975 | 4.0 | 16068 | 0.7936 | 0.8226 | 0.8167 | 0.8133 | 0.8148 | 0.8226 | 0.8226 | 0.8225 |
0.1536 | 5.0 | 20085 | 1.0773 | 0.8139 | 0.8126 | 0.7991 | 0.8045 | 0.8146 | 0.8139 | 0.8130 |
0.1247 | 6.0 | 24102 | 1.1831 | 0.8247 | 0.8168 | 0.8172 | 0.8170 | 0.8247 | 0.8247 | 0.8247 |
0.0989 | 7.0 | 28119 | 1.3600 | 0.8211 | 0.8156 | 0.8095 | 0.8123 | 0.8205 | 0.8211 | 0.8205 |
0.0818 | 8.0 | 32136 | 1.4785 | 0.8256 | 0.8158 | 0.8221 | 0.8187 | 0.8275 | 0.8256 | 0.8262 |
0.062 | 9.0 | 36153 | 1.6175 | 0.8244 | 0.8167 | 0.8164 | 0.8165 | 0.8245 | 0.8244 | 0.8244 |
0.0536 | 10.0 | 40170 | 1.6854 | 0.8201 | 0.8149 | 0.8097 | 0.8121 | 0.8195 | 0.8201 | 0.8197 |
0.0373 | 11.0 | 44187 | 1.6336 | 0.8240 | 0.8188 | 0.8126 | 0.8155 | 0.8234 | 0.8240 | 0.8234 |
0.0349 | 12.0 | 48204 | 1.6960 | 0.8289 | 0.8202 | 0.8232 | 0.8216 | 0.8297 | 0.8289 | 0.8293 |
0.0222 | 13.0 | 52221 | 1.8910 | 0.8216 | 0.8167 | 0.8096 | 0.8128 | 0.8209 | 0.8216 | 0.8208 |
0.0147 | 14.0 | 56238 | 1.8448 | 0.8320 | 0.8253 | 0.8246 | 0.8247 | 0.8328 | 0.8320 | 0.8322 |
0.0168 | 15.0 | 60255 | 1.8517 | 0.8337 | 0.8257 | 0.8286 | 0.8271 | 0.8345 | 0.8337 | 0.8340 |
0.0128 | 16.0 | 64272 | 1.9199 | 0.8326 | 0.8263 | 0.8240 | 0.8251 | 0.8324 | 0.8326 | 0.8325 |
0.0077 | 17.0 | 68289 | 1.9848 | 0.8308 | 0.8231 | 0.8237 | 0.8234 | 0.8309 | 0.8308 | 0.8309 |
0.005 | 18.0 | 72306 | 2.0593 | 0.8292 | 0.8258 | 0.8187 | 0.8218 | 0.8292 | 0.8292 | 0.8288 |
0.0018 | 19.0 | 76323 | 2.0637 | 0.8293 | 0.8229 | 0.8207 | 0.8218 | 0.8291 | 0.8293 | 0.8292 |
0.0019 | 20.0 | 80340 | 2.0698 | 0.8315 | 0.8251 | 0.8236 | 0.8243 | 0.8315 | 0.8315 | 0.8315 |
Framework versions
- Transformers 4.38.2
- Pytorch 2.1.2
- Datasets 2.18.0
- Tokenizers 0.15.2
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Base model
FacebookAI/roberta-large