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---
tags:
- generated_from_trainer
metrics:
- wer
- bleu
model-index:
- name: geez_t5-15k
  results: []
---

<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->

# geez_t5-15k

This model is a fine-tuned version of [](https://huggingface.co/) on an unknown dataset.
It achieves the following results on the evaluation set:
- Loss: 1.3233
- Wer: 0.2209
- Cer: 0.1381
- Bleu: 70.4059

## 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: 0.0005
- train_batch_size: 128
- eval_batch_size: 128
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 50

### Training results

| Training Loss | Epoch | Step | Validation Loss | Wer    | Cer    | Bleu    |
|:-------------:|:-----:|:----:|:---------------:|:------:|:------:|:-------:|
| 7.7095        | 1.0   | 145  | 7.7918          | 5.0898 | 3.9256 | 0.0023  |
| 7.0334        | 2.0   | 290  | 7.1199          | 5.0160 | 4.1855 | 0.0051  |
| 6.4831        | 3.0   | 435  | 6.6645          | 5.0207 | 3.8475 | 0.0214  |
| 6.1982        | 4.0   | 580  | 6.3920          | 4.5634 | 3.8489 | 0.0529  |
| 5.903         | 5.0   | 725  | 6.1877          | 4.5275 | 3.5050 | 0.0557  |
| 5.669         | 6.0   | 870  | 6.0360          | 4.9197 | 4.0028 | 0.0634  |
| 5.425         | 7.0   | 1015 | 5.8639          | 4.4216 | 3.7590 | 0.1208  |
| 5.2049        | 8.0   | 1160 | 5.7314          | 3.2761 | 2.6167 | 0.1783  |
| 5.0061        | 9.0   | 1305 | 5.6525          | 3.9136 | 3.2163 | 0.1433  |
| 4.8471        | 10.0  | 1450 | 5.5808          | 2.8054 | 2.4552 | 0.3077  |
| 4.6025        | 11.0  | 1595 | 5.4963          | 3.1738 | 2.8400 | 0.2473  |
| 4.4593        | 12.0  | 1740 | 5.4572          | 2.9939 | 2.6228 | 0.3764  |
| 4.3925        | 13.0  | 1885 | 5.3739          | 2.4268 | 2.0558 | 0.4943  |
| 4.2547        | 14.0  | 2030 | 5.3549          | 2.1811 | 1.9179 | 0.6141  |
| 4.2059        | 15.0  | 2175 | 5.3532          | 2.5793 | 2.2089 | 0.5485  |
| 4.0344        | 16.0  | 2320 | 5.3384          | 2.1161 | 1.8753 | 0.7106  |
| 3.8338        | 17.0  | 2465 | 5.3491          | 2.1119 | 1.9856 | 0.6538  |
| 3.8922        | 18.0  | 2610 | 5.3233          | 2.0402 | 1.8304 | 0.8877  |
| 3.6469        | 19.0  | 2755 | 5.3290          | 1.7011 | 1.4942 | 1.1830  |
| 2.8339        | 20.0  | 2900 | 4.1129          | 1.7063 | 1.4567 | 4.0465  |
| 1.4826        | 21.0  | 3045 | 2.3404          | 1.6510 | 1.4483 | 11.1205 |
| 0.8862        | 22.0  | 3190 | 1.6343          | 1.4432 | 1.2622 | 18.9607 |
| 0.603         | 23.0  | 3335 | 1.3605          | 1.1528 | 0.9975 | 27.6554 |
| 0.4701        | 24.0  | 3480 | 1.2962          | 1.0378 | 0.8913 | 31.5906 |
| 0.4302        | 25.0  | 3625 | 1.2630          | 0.8397 | 0.7215 | 38.0315 |
| 0.3239        | 26.0  | 3770 | 1.2441          | 0.6757 | 0.5460 | 44.0109 |
| 0.2679        | 27.0  | 3915 | 1.2520          | 0.6738 | 0.5478 | 44.8130 |
| 0.2543        | 28.0  | 4060 | 1.2496          | 0.6416 | 0.5215 | 46.1244 |
| 0.2113        | 29.0  | 4205 | 1.2534          | 0.5392 | 0.4282 | 50.5640 |
| 0.1811        | 30.0  | 4350 | 1.2870          | 0.6152 | 0.4961 | 47.6743 |
| 0.1676        | 31.0  | 4495 | 1.2657          | 0.5494 | 0.4411 | 50.7361 |
| 0.1523        | 32.0  | 4640 | 1.2986          | 0.5483 | 0.4476 | 50.8212 |
| 0.1468        | 33.0  | 4785 | 1.3057          | 0.4785 | 0.3744 | 54.2680 |
| 0.1375        | 34.0  | 4930 | 1.3025          | 0.4506 | 0.3545 | 55.8315 |
| 0.1259        | 35.0  | 5075 | 1.3367          | 0.4865 | 0.3899 | 54.1053 |
| 0.1194        | 36.0  | 5220 | 1.3196          | 0.4540 | 0.3581 | 55.4216 |
| 0.1116        | 37.0  | 5365 | 1.3104          | 0.3943 | 0.3011 | 58.6213 |
| 0.0968        | 38.0  | 5510 | 1.3477          | 0.3834 | 0.2953 | 59.3219 |
| 0.0981        | 39.0  | 5655 | 1.3217          | 0.4059 | 0.3112 | 58.2604 |
| 0.0938        | 40.0  | 5800 | 1.3304          | 0.4132 | 0.3205 | 57.7388 |
| 0.0823        | 41.0  | 5945 | 1.3023          | 0.3432 | 0.2481 | 61.8713 |
| 0.0786        | 42.0  | 6090 | 1.3138          | 0.2974 | 0.2027 | 64.6092 |
| 0.0766        | 43.0  | 6235 | 1.3324          | 0.3680 | 0.2768 | 60.6454 |
| 0.0765        | 44.0  | 6380 | 1.3266          | 0.3359 | 0.2359 | 62.7278 |
| 0.0718        | 45.0  | 6525 | 1.3440          | 0.3000 | 0.2163 | 64.6481 |
| 0.0637        | 46.0  | 6670 | 1.3283          | 0.2628 | 0.1782 | 67.2375 |
| 0.0658        | 47.0  | 6815 | 1.3331          | 0.2605 | 0.1721 | 67.1960 |
| 0.0643        | 48.0  | 6960 | 1.3198          | 0.2618 | 0.1780 | 67.4730 |
| 0.0682        | 49.0  | 7105 | 1.3196          | 0.2732 | 0.1876 | 66.2931 |
| 0.0605        | 50.0  | 7250 | 1.3233          | 0.2209 | 0.1381 | 70.4059 |


### Framework versions

- Transformers 4.38.2
- Pytorch 2.2.1+cu121
- Datasets 2.18.0
- Tokenizers 0.15.2