Terjman-Large / README.md
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---
license: cc-by-4.0
base_model: Helsinki-NLP/opus-mt-tc-big-en-ar
tags:
- generated_from_trainer
metrics:
- bleu
model-index:
- name: Terjman-Large
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. -->
# Terjman-Large
This model is a fine-tuned version of [Helsinki-NLP/opus-mt-tc-big-en-ar](https://huggingface.co/Helsinki-NLP/opus-mt-tc-big-en-ar) on an unknown dataset.
It achieves the following results on the evaluation set:
- Loss: 3.2078
- Bleu: 8.3292
- Gen Len: 34.4959
## 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: 3e-05
- train_batch_size: 22
- eval_batch_size: 22
- seed: 42
- gradient_accumulation_steps: 4
- total_train_batch_size: 88
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_ratio: 0.03
- num_epochs: 40
### Training results
| Training Loss | Epoch | Step | Validation Loss | Bleu | Gen Len |
|:-------------:|:-------:|:-----:|:---------------:|:------:|:-------:|
| No log | 0.9982 | 407 | 4.3938 | 4.6056 | 22.6033 |
| 5.1616 | 1.9988 | 815 | 3.7257 | 5.8319 | 30.9201 |
| 3.902 | 2.9994 | 1223 | 3.5214 | 6.7311 | 32.9091 |
| 3.5737 | 4.0 | 1631 | 3.4204 | 7.3684 | 32.1433 |
| 3.4576 | 4.9982 | 2038 | 3.3562 | 7.8632 | 34.5399 |
| 3.4576 | 5.9988 | 2446 | 3.3151 | 7.9739 | 35.3278 |
| 3.3833 | 6.9994 | 2854 | 3.2884 | 8.0825 | 35.8292 |
| 3.3358 | 8.0 | 3262 | 3.2681 | 8.2765 | 34.5427 |
| 3.3069 | 8.9982 | 3669 | 3.2517 | 8.1019 | 33.584 |
| 3.2769 | 9.9988 | 4077 | 3.2404 | 8.106 | 33.3802 |
| 3.2769 | 10.9994 | 4485 | 3.2342 | 8.3037 | 33.303 |
| 3.2777 | 12.0 | 4893 | 3.2284 | 8.0674 | 33.3967 |
| 3.2476 | 12.9982 | 5300 | 3.2226 | 8.2883 | 33.8154 |
| 3.2611 | 13.9988 | 5708 | 3.2189 | 8.3537 | 34.0413 |
| 3.2511 | 14.9994 | 6116 | 3.2159 | 8.1365 | 34.5014 |
| 3.2437 | 16.0 | 6524 | 3.2140 | 8.3549 | 34.0606 |
| 3.2437 | 16.9982 | 6931 | 3.2131 | 8.2507 | 34.303 |
| 3.2498 | 17.9988 | 7339 | 3.2116 | 8.2928 | 33.9945 |
| 3.2341 | 18.9994 | 7747 | 3.2105 | 8.337 | 33.7052 |
| 3.2403 | 20.0 | 8155 | 3.2098 | 8.3179 | 34.3526 |
| 3.2229 | 20.9982 | 8562 | 3.2094 | 8.3848 | 34.2039 |
| 3.2229 | 21.9988 | 8970 | 3.2090 | 8.2042 | 34.6529 |
| 3.2379 | 22.9994 | 9378 | 3.2086 | 8.4227 | 34.0275 |
| 3.2257 | 24.0 | 9786 | 3.2082 | 8.3515 | 34.3306 |
| 3.2526 | 24.9982 | 10193 | 3.2085 | 8.4089 | 34.4986 |
| 3.2206 | 25.9988 | 10601 | 3.2082 | 8.476 | 34.6226 |
| 3.2288 | 26.9994 | 11009 | 3.2083 | 8.4452 | 33.697 |
| 3.2288 | 28.0 | 11417 | 3.2080 | 8.29 | 34.0331 |
| 3.2251 | 28.9982 | 11824 | 3.2080 | 8.35 | 34.2948 |
| 3.2302 | 29.9988 | 12232 | 3.2078 | 8.4408 | 33.416 |
| 3.21 | 30.9994 | 12640 | 3.2079 | 8.2934 | 34.0854 |
| 3.2271 | 32.0 | 13048 | 3.2079 | 8.4573 | 33.3912 |
| 3.2271 | 32.9982 | 13455 | 3.2078 | 8.4055 | 34.2452 |
| 3.2428 | 33.9988 | 13863 | 3.2079 | 8.5107 | 34.5152 |
| 3.2303 | 34.9994 | 14271 | 3.2080 | 8.3734 | 34.2562 |
| 3.2129 | 36.0 | 14679 | 3.2079 | 8.3193 | 34.4628 |
| 3.2119 | 36.9982 | 15086 | 3.2082 | 8.4122 | 34.2121 |
| 3.2119 | 37.9988 | 15494 | 3.2078 | 8.3585 | 33.8843 |
| 3.2445 | 38.9994 | 15902 | 3.2079 | 8.3968 | 34.6722 |
| 3.2356 | 39.9264 | 16280 | 3.2078 | 8.3292 | 34.4959 |
### Framework versions
- Transformers 4.40.2
- Pytorch 2.2.1+cu121
- Datasets 2.19.1
- Tokenizers 0.19.1