Papers › Does BERT Learn as Humans Perceive? Understanding Linguistic Styles through Lexica

Does BERT Learn as Humans Perceive? Understanding Linguistic Styles through Lexica

6 Sep 2021EMNLP 2021 11arXiv:2109.02738archive 2025-07-28

Shirley Anugrah Hayati, Dongyeop Kang, Lyle Ungar

People convey their intention and attitude through linguistic styles of the text that they write. In this study, we investigate lexicon usages across styles throughout two lenses: human perception and machine word importance, since words differ in the strength of the stylistic cues that they provide. To collect labels of human perception, we curate a new dataset, Hummingbird, on top of benchmarking style datasets. We have crowd workers highlight the representative words in the text that makes them think the text has the following styles: politeness, sentiment, offensiveness, and five emotion types. We then compare these human word labels with word importance derived from a popular fine-tuned style classifier like BERT. Our results show that the BERT often finds content words not relevant to the target style as important words used in style prediction, but humans do not perceive the same way even though for some styles (e.g., positive sentiment and joy) human- and machine-identified words share significant overlap for some styles.

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match_bert_token_to_original sweetpeach/hummingbird/code/extract_tokens_from_bert_data.py official repository ran · our draft was wrong fingerprinted no licence file found · pointer only · fc3eba1ef1f4862c · report
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Hummingbird

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Methods

AdamAttentionAttention DropoutBERTDense ConnectionsDropoutLayer NormalizationLinear LayerLinear Warmup With Linear DecayMulti-Head AttentionResidual ConnectionSoftmaxWeight DecayWordPiece

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