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Model: NasimB/children_bnc_rarity_all_no_cut Source: Original Platform
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README.md
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README.md
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---
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license: mit
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tags:
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- generated_from_trainer
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datasets:
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- generator
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model-index:
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- name: children_bnc_rarity_all_no_cut
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results: []
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---
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<!-- This model card has been generated automatically according to the information the Trainer had access to. You
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should probably proofread and complete it, then remove this comment. -->
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# children_bnc_rarity_all_no_cut
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This model is a fine-tuned version of [gpt2](https://huggingface.co/gpt2) on the generator dataset.
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It achieves the following results on the evaluation set:
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- Loss: 4.3266
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## Model description
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More information needed
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## Intended uses & limitations
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More information needed
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## Training and evaluation data
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More information needed
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## Training procedure
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### Training hyperparameters
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The following hyperparameters were used during training:
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- learning_rate: 0.0005
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- train_batch_size: 64
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- eval_batch_size: 64
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- seed: 42
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- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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- lr_scheduler_type: cosine
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- lr_scheduler_warmup_steps: 1000
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- num_epochs: 6
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- mixed_precision_training: Native AMP
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### Training results
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| Training Loss | Epoch | Step | Validation Loss |
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|:-------------:|:-----:|:-----:|:---------------:|
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| 6.7047 | 0.29 | 500 | 5.6398 |
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| 5.3501 | 0.58 | 1000 | 5.2066 |
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| 5.0056 | 0.88 | 1500 | 4.9588 |
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| 4.7258 | 1.17 | 2000 | 4.8173 |
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| 4.5734 | 1.46 | 2500 | 4.6948 |
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| 4.4663 | 1.75 | 3000 | 4.5804 |
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| 4.3402 | 2.05 | 3500 | 4.5071 |
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| 4.1471 | 2.34 | 4000 | 4.4576 |
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| 4.1137 | 2.63 | 4500 | 4.4027 |
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| 4.0777 | 2.92 | 5000 | 4.3468 |
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| 3.8629 | 3.22 | 5500 | 4.3449 |
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| 3.8078 | 3.51 | 6000 | 4.3108 |
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| 3.8044 | 3.8 | 6500 | 4.2763 |
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| 3.7029 | 4.09 | 7000 | 4.2803 |
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| 3.5324 | 4.39 | 7500 | 4.2741 |
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| 3.5239 | 4.68 | 8000 | 4.2585 |
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| 3.5091 | 4.97 | 8500 | 4.2454 |
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| 3.3521 | 5.26 | 9000 | 4.2592 |
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| 3.3357 | 5.56 | 9500 | 4.2584 |
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| 3.3348 | 5.85 | 10000 | 4.2573 |
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### Framework versions
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- Transformers 4.26.1
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- Pytorch 1.11.0+cu113
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- Datasets 2.13.0
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- Tokenizers 0.13.3
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