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tags:
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results: []
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should probably proofread and complete it, then remove this comment. -->
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# deberta-v3-large-zeroshot-v1.1-all_except_nli
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This model is a fine-tuned version of [microsoft/deberta-v3-large](https://huggingface.co/microsoft/deberta-v3-large) on an unknown dataset.
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It achieves the following results on the evaluation set:
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- Loss: 0.3183
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- F1 Macro: 0.2132
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- F1 Micro: 0.2379
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- Accuracy Balanced: 0.2319
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- Accuracy: 0.2379
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- Precision Macro: 0.4070
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- Recall Macro: 0.2319
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- Precision Micro: 0.2379
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- Recall Micro: 0.2379
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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: 9e-06
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- train_batch_size: 16
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- eval_batch_size: 64
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- seed: 42
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- gradient_accumulation_steps: 2
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- total_train_batch_size: 32
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- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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- lr_scheduler_type: linear
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- lr_scheduler_warmup_ratio: 0.06
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- num_epochs: 3
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### Training results
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|:-------------:|:-----:|:-----:|:---------------:|:--------:|:--------:|:-----------------:|:--------:|:---------------:|:------------:|:---------------:|:------------:|
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| 0.1929 | 1.0 | 27664 | 0.3072 | 0.8708 | 0.8831 | 0.8683 | 0.8831 | 0.8735 | 0.8683 | 0.8831 | 0.8831 |
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| 0.1426 | 2.0 | 55328 | 0.3692 | 0.8709 | 0.8839 | 0.8664 | 0.8839 | 0.8761 | 0.8664 | 0.8839 | 0.8839 |
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| 0.0935 | 3.0 | 82992 | 0.4419 | 0.8747 | 0.8864 | 0.8729 | 0.8864 | 0.8765 | 0.8729 | 0.8864 | 0.8864 |
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- Transformers 4.33.3
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- Pytorch 1.11.0+cu113
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- Datasets 2.14.6
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- Tokenizers 0.12.1
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language:
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- en
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tags:
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- text-classification
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- zero-shot-classification
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pipeline_tag: zero-shot-classification
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library_name: transformers
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license: mit
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# Model description: deberta-v3-large-mnli-fever-anli-ling-wanli-binary
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This model was mostly created as a comparative benchmark for another model, see here: https://huggingface.co/MoritzLaurer/deberta-v3-large-zeroshot-v1.1-all-33
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This model was only trained on five NLI datasets, while the other model was trained on many more datasets.
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I mostly recommend using the other model.
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This NLI-only model might only be better for tasks that are not zeroshot classification
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but that adhere more strictly to the original NLI task.
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See the other model's model card for usage instructions, training data and the paper.
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