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---
license: apache-2.0
base_model: t5-small
tags:
- generated_from_trainer
metrics:
- rouge
model-index:
- name: text_shortening_model_v2
  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. -->

# text_shortening_model_v2

This model is a fine-tuned version of [t5-small](https://huggingface.co/t5-small) on the None dataset.
It achieves the following results on the evaluation set:
- Loss: 1.4449
- Rouge1: 0.581
- Rouge2: 0.3578
- Rougel: 0.5324
- Rougelsum: 0.5317
- Bert precision: 0.8885
- Bert recall: 0.8981
- Average word count: 11.5929
- Max word count: 17
- Min word count: 3
- Average token count: 16.7071

## Model description

No "summarize" prefix

## 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: 0.0001
- train_batch_size: 64
- eval_batch_size: 64
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 20

### Training results

| Training Loss | Epoch | Step | Validation Loss | Rouge1 | Rouge2 | Rougel | Rougelsum | Bert precision | Bert recall | Average word count | Max word count | Min word count | Average token count |
|:-------------:|:-----:|:----:|:---------------:|:------:|:------:|:------:|:---------:|:--------------:|:-----------:|:------------------:|:--------------:|:--------------:|:-------------------:|
| 1.7498        | 1.0   | 8    | 1.9424          | 0.4725 | 0.2644 | 0.4207 | 0.4216    | 0.8343         | 0.8502      | 11.7357            | 18             | 0              | 17.5143             |
| 1.5236        | 2.0   | 16   | 1.7731          | 0.5185 | 0.2961 | 0.4661 | 0.4665    | 0.8566         | 0.8646      | 11.05              | 18             | 0              | 16.6143             |
| 1.4381        | 3.0   | 24   | 1.6880          | 0.5459 | 0.3212 | 0.4947 | 0.4942    | 0.8773         | 0.8862      | 11.5857            | 18             | 3              | 16.8143             |
| 1.3895        | 4.0   | 32   | 1.6405          | 0.5537 | 0.3275 | 0.506  | 0.5061    | 0.8815         | 0.8894      | 11.7               | 18             | 3              | 16.6571             |
| 1.353         | 5.0   | 40   | 1.5941          | 0.5579 | 0.3347 | 0.5124 | 0.5119    | 0.8839         | 0.8933      | 11.7643            | 18             | 4              | 16.7429             |
| 1.3026        | 6.0   | 48   | 1.5568          | 0.5585 | 0.3379 | 0.5132 | 0.5129    | 0.8823         | 0.8945      | 11.9714            | 18             | 4              | 16.95               |
| 1.2624        | 7.0   | 56   | 1.5359          | 0.5696 | 0.3466 | 0.5202 | 0.5195    | 0.8837         | 0.897       | 12.0143            | 18             | 5              | 17.1143             |
| 1.2481        | 8.0   | 64   | 1.5186          | 0.5736 | 0.3517 | 0.5241 | 0.523     | 0.8849         | 0.898       | 12.0214            | 17             | 6              | 17.1714             |
| 1.2089        | 9.0   | 72   | 1.5055          | 0.5732 | 0.3499 | 0.5256 | 0.5246    | 0.8846         | 0.8979      | 12.0357            | 17             | 5              | 17.2214             |
| 1.1845        | 10.0  | 80   | 1.4898          | 0.5761 | 0.3548 | 0.5284 | 0.5276    | 0.886          | 0.8977      | 11.9               | 17             | 5              | 17.0786             |
| 1.1882        | 11.0  | 88   | 1.4787          | 0.5768 | 0.3573 | 0.5291 | 0.5288    | 0.8862         | 0.8986      | 11.8071            | 17             | 5              | 17.05               |
| 1.1649        | 12.0  | 96   | 1.4720          | 0.5784 | 0.3592 | 0.5319 | 0.531     | 0.8868         | 0.8988      | 11.7786            | 17             | 5              | 17.0                |
| 1.1643        | 13.0  | 104  | 1.4637          | 0.5785 | 0.3592 | 0.5314 | 0.5308    | 0.8875         | 0.8977      | 11.6571            | 17             | 3              | 16.8214             |
| 1.129         | 14.0  | 112  | 1.4565          | 0.5794 | 0.3585 | 0.5324 | 0.5315    | 0.8883         | 0.8984      | 11.6571            | 17             | 3              | 16.8                |
| 1.136         | 15.0  | 120  | 1.4516          | 0.5826 | 0.3598 | 0.537  | 0.5363    | 0.8898         | 0.8995      | 11.5857            | 17             | 3              | 16.6786             |
| 1.1191        | 16.0  | 128  | 1.4491          | 0.5828 | 0.3579 | 0.5357 | 0.535     | 0.8895         | 0.899       | 11.5929            | 17             | 3              | 16.6857             |
| 1.1192        | 17.0  | 136  | 1.4471          | 0.5794 | 0.355  | 0.5312 | 0.5307    | 0.8883         | 0.898       | 11.6143            | 17             | 3              | 16.7286             |
| 1.1085        | 18.0  | 144  | 1.4456          | 0.5808 | 0.3557 | 0.5315 | 0.5307    | 0.8883         | 0.8982      | 11.6286            | 17             | 3              | 16.7429             |
| 1.1063        | 19.0  | 152  | 1.4451          | 0.5808 | 0.3571 | 0.5321 | 0.5314    | 0.8884         | 0.8981      | 11.6               | 17             | 3              | 16.7143             |
| 1.0965        | 20.0  | 160  | 1.4449          | 0.581  | 0.3578 | 0.5324 | 0.5317    | 0.8885         | 0.8981      | 11.5929            | 17             | 3              | 16.7071             |


### Framework versions

- Transformers 4.32.1
- Pytorch 2.0.1+cu118
- Datasets 2.14.4
- Tokenizers 0.13.3