JuliusFx/dyu-fr-t5-small_v7
This model is a fine-tuned version of t5-small on an unknown dataset. It achieves the following results on the evaluation set:
- Train Loss: 1.9053
- Validation Loss: 3.0844
- Epoch: 99
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': 'AdamWeightDecay', 'learning_rate': 2e-05, 'decay': 0.0, 'beta_1': 0.9, 'beta_2': 0.999, 'epsilon': 1e-07, 'amsgrad': False, 'weight_decay_rate': 0.01}
- training_precision: float32
Training results
Train Loss | Validation Loss | Epoch |
---|---|---|
3.6620 | 3.3803 | 0 |
3.4472 | 3.2921 | 1 |
3.3525 | 3.2231 | 2 |
3.2837 | 3.1862 | 3 |
3.2322 | 3.1474 | 4 |
3.1837 | 3.1283 | 5 |
3.1428 | 3.0978 | 6 |
3.1095 | 3.0848 | 7 |
3.0765 | 3.0664 | 8 |
3.0453 | 3.0565 | 9 |
3.0144 | 3.0408 | 10 |
2.9884 | 3.0344 | 11 |
2.9633 | 3.0285 | 12 |
2.9377 | 3.0228 | 13 |
2.9175 | 3.0158 | 14 |
2.8979 | 3.0310 | 15 |
2.8737 | 3.0306 | 16 |
2.8575 | 3.0122 | 17 |
2.8343 | 3.0232 | 18 |
2.8178 | 3.0135 | 19 |
2.7992 | 3.0038 | 20 |
2.7791 | 3.0221 | 21 |
2.7636 | 3.0123 | 22 |
2.7430 | 3.0083 | 23 |
2.7286 | 3.0186 | 24 |
2.7083 | 2.9942 | 25 |
2.6964 | 2.9911 | 26 |
2.6792 | 2.9891 | 27 |
2.6580 | 3.0056 | 28 |
2.6414 | 3.0048 | 29 |
2.6329 | 3.0040 | 30 |
2.6213 | 3.0035 | 31 |
2.6042 | 3.0061 | 32 |
2.5913 | 3.0095 | 33 |
2.5720 | 3.0202 | 34 |
2.5590 | 3.0204 | 35 |
2.5429 | 3.0304 | 36 |
2.5352 | 3.0128 | 37 |
2.5162 | 2.9989 | 38 |
2.5086 | 3.0094 | 39 |
2.4949 | 3.0048 | 40 |
2.4799 | 3.0187 | 41 |
2.4703 | 3.0199 | 42 |
2.4537 | 3.0340 | 43 |
2.4468 | 3.0233 | 44 |
2.4317 | 3.0171 | 45 |
2.4195 | 3.0274 | 46 |
2.4079 | 3.0265 | 47 |
2.3948 | 3.0173 | 48 |
2.3852 | 3.0194 | 49 |
2.3728 | 3.0275 | 50 |
2.3631 | 3.0147 | 51 |
2.3525 | 3.0338 | 52 |
2.3401 | 3.0444 | 53 |
2.3303 | 3.0556 | 54 |
2.3145 | 3.0440 | 55 |
2.3057 | 3.0500 | 56 |
2.2951 | 3.0496 | 57 |
2.2830 | 3.0497 | 58 |
2.2690 | 3.0461 | 59 |
2.2646 | 3.0373 | 60 |
2.2503 | 3.0343 | 61 |
2.2457 | 3.0589 | 62 |
2.2343 | 3.0538 | 63 |
2.2285 | 3.0434 | 64 |
2.2146 | 3.0410 | 65 |
2.2048 | 3.0339 | 66 |
2.1913 | 3.0507 | 67 |
2.1803 | 3.0459 | 68 |
2.1747 | 3.0487 | 69 |
2.1641 | 3.0344 | 70 |
2.1547 | 3.0440 | 71 |
2.1461 | 3.0655 | 72 |
2.1403 | 3.0383 | 73 |
2.1267 | 3.0239 | 74 |
2.1161 | 3.0183 | 75 |
2.1010 | 3.0555 | 76 |
2.0980 | 3.0412 | 77 |
2.0894 | 3.0400 | 78 |
2.0806 | 3.0389 | 79 |
2.0744 | 3.0377 | 80 |
2.0591 | 3.0596 | 81 |
2.0525 | 3.0449 | 82 |
2.0465 | 3.0532 | 83 |
2.0385 | 3.0465 | 84 |
2.0232 | 3.0374 | 85 |
2.0231 | 3.0280 | 86 |
2.0089 | 3.0506 | 87 |
2.0031 | 3.0629 | 88 |
1.9959 | 3.0440 | 89 |
1.9854 | 3.0669 | 90 |
1.9776 | 3.0718 | 91 |
1.9698 | 3.0657 | 92 |
1.9591 | 3.0650 | 93 |
1.9529 | 3.0599 | 94 |
1.9483 | 3.0726 | 95 |
1.9429 | 3.0682 | 96 |
1.9271 | 3.0618 | 97 |
1.9208 | 3.0857 | 98 |
1.9053 | 3.0844 | 99 |
Framework versions
- Transformers 4.38.2
- TensorFlow 2.15.0
- Datasets 2.18.0
- Tokenizers 0.15.2
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Base model
google-t5/t5-small