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README.md
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@@ -87,5 +87,6 @@ The model achieves the following results after tuning on GLUE tasks:
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|qnli |acc |0.9075 |**0.9192** |
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|rte |acc |0.6296 |**0.6390** |
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|wnli |acc |0.4000 |**0.4648** |
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For both the original BERT and our model, we used the Hugging Face run_glue.py script [here](https://github.com/huggingface/transformers/tree/main/examples/pytorch/text-classification).
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For both models, we used the default fine-tuning hyperparameters and we averaged the results over five training seeds. These are the results for the GLUE dev sets, which can be a bit different than the results for the test sets.
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|qnli |acc |0.9075 |**0.9192** |
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|rte |acc |0.6296 |**0.6390** |
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|wnli |acc |0.4000 |**0.4648** |
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For both the original BERT and our model, we used the Hugging Face run_glue.py script [here](https://github.com/huggingface/transformers/tree/main/examples/pytorch/text-classification).
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For both models, we used the default fine-tuning hyperparameters and we averaged the results over five training seeds. These are the results for the GLUE dev sets, which can be a bit different than the results for the test sets.
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