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- ## xlnet-base-cased fine-tuned with TextAttack on the rotten_tomatoes dataset
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-
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  This `xlnet-base-cased` model was fine-tuned for sequence classification using TextAttack
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  and the rotten_tomatoes dataset loaded using the `nlp` library. The model was fine-tuned
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- for 5 epochs with a batch size of 8, a learning
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  rate of 2e-05, and a maximum sequence length of 128.
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  Since this was a classification task, the model was trained with a cross-entropy loss function.
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- The best score the model achieved on this task was 0.9033771106941839, as measured by the
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  eval set accuracy, found after 2 epochs.
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  For more information, check out [TextAttack on Github](https://github.com/QData/TextAttack).
 
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+ ## TextAttack Model Card
 
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  This `xlnet-base-cased` model was fine-tuned for sequence classification using TextAttack
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  and the rotten_tomatoes dataset loaded using the `nlp` library. The model was fine-tuned
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+ for 5 epochs with a batch size of 16, a learning
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  rate of 2e-05, and a maximum sequence length of 128.
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  Since this was a classification task, the model was trained with a cross-entropy loss function.
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+ The best score the model achieved on this task was 0.9071294559099438, as measured by the
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  eval set accuracy, found after 2 epochs.
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  For more information, check out [TextAttack on Github](https://github.com/QData/TextAttack).