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README.md
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The number of examples per task was capped to 64. The model was trained for 20k steps with a batch size of 384, a peak learning rate of 2e-5.
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You can fine-tune this model to use it for multiple-choice or any classification task (e.g. NLI) like any debertav2 model.
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This model has strong validation performance on many tasks (e.g. 70% on WNLI).
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The list of tasks is available in tasks.md
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The number of examples per task was capped to 64. The model was trained for 20k steps with a batch size of 384, a peak learning rate of 2e-5.
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You can fine-tune this model to use it for multiple-choice or any classification task (e.g. NLI) like any debertav2 model.
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This model has strong zero-shot validation performance on many tasks (e.g. 70% on WNLI).
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The list of tasks is available in tasks.md
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