Contextualized Character Representation for Chinese Grammatical Error Diagnosis

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Abstract

Nowadays, more and more people are learning Chinese as their second language. Establishing an automatic diagnosis system for Chinese grammatical error has become an important challenge. In this paper, we propose a Chinese grammatical error diagnosis (CGED) model with contextualized character representation. Compared to the traditional model using LSTM (Long-Short Term Memory), our model have better performance and there is no need to add too many artificial features.

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APA

Zhao, J., Li, S., & Lin, Z. (2018). Contextualized Character Representation for Chinese Grammatical Error Diagnosis. In Proceedings of the Annual Meeting of the Association for Computational Linguistics (pp. 172–179). Association for Computational Linguistics (ACL). https://doi.org/10.18653/v1/w18-3725

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