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TextAttack Model Card
This distilbert-base-uncased model was fine-tuned for sequence classification using TextAttack 
and the glue dataset loaded using the nlp library. The model was fine-tuned 
for 5 epochs with a batch size of 32, a learning 
rate of 2e-05, and a maximum sequence length of 256. 
Since this was a classification task, the model was trained with a cross-entropy loss function. 
The best score the model achieved on this task was 0.8578431372549019, as measured by the 
eval set accuracy, found after 1 epoch.
For more information, check out TextAttack on Github.
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