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Papers/ERNIE: Enhanced Representation through Knowledge Integration

ERNIE: Enhanced Representation through Knowledge Integration

Yu Sun, Shuohuan Wang, Yukun Li, Shikun Feng, Xuyi Chen, Han Zhang, Xin Tian, Danxiang Zhu, Hao Tian, Hua Wu

2019-04-19Chinese Sentiment AnalysisQuestion AnsweringCloze TestSentiment AnalysisNatural Language InferenceChinese Sentence Pair ClassificationNamed Entity RecognitionSemantic SimilarityChinese Named Entity RecognitionSemantic Textual SimilarityNamed Entity Recognition (NER)
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Abstract

We present a novel language representation model enhanced by knowledge called ERNIE (Enhanced Representation through kNowledge IntEgration). Inspired by the masking strategy of BERT, ERNIE is designed to learn language representation enhanced by knowledge masking strategies, which includes entity-level masking and phrase-level masking. Entity-level strategy masks entities which are usually composed of multiple words.Phrase-level strategy masks the whole phrase which is composed of several words standing together as a conceptual unit.Experimental results show that ERNIE outperforms other baseline methods, achieving new state-of-the-art results on five Chinese natural language processing tasks including natural language inference, semantic similarity, named entity recognition, sentiment analysis and question answering. We also demonstrate that ERNIE has more powerful knowledge inference capacity on a cloze test.

Results

TaskDatasetMetricValueModel
Natural Language InferenceXNLI Chinese DevAccuracy79.9ERNIE
Natural Language InferenceXNLI ChineseAccuracy78.4ERNIE
Named Entity Recognition (NER)MSRA DevF195ERNIE
Named Entity Recognition (NER)MSRAF193.8ERNIE

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