Korean Text Summarization using MASS with Copying and Coverage Mechanism and Length Embedding 


Vol. 49,  No. 1, pp. 25-31, Jan.  2022
10.5626/JOK.2022.49.1.25


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  Abstract

Text summarization is a technology that generates a summary including important and essential information from a given document, and an end-to-end abstractive summarization model using a sequence-to-sequence model is mainly studied. Recently, a transfer learning method that performs fine-tuning using a pre-training model based on large-scale monolingual data has been actively studied in the field of natural language processing. In this paper, we applied the copying mechanism method to the MASS model, conducted pre-training for Korean language generation, and then applied it to Korean text summarization. In addition, coverage mechanism and length embedding were additionally applied to improve the summarization model. As a result of the experiment, it was shown that the Korean text summarization model, which applied the copying and coverage mechanism method to the MASS model, showed a higher performance than the existing models, and that the length of the summary could be adjusted through length embedding.


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  Cite this article

[IEEE Style]

Y. Jung, C. Lee, W. Go, H. Yoon, "Korean Text Summarization using MASS with Copying and Coverage Mechanism and Length Embedding," Journal of KIISE, JOK, vol. 49, no. 1, pp. 25-31, 2022. DOI: 10.5626/JOK.2022.49.1.25.


[ACM Style]

Youngjun Jung, Changki Lee, Wooyoung Go, and Hanjun Yoon. 2022. Korean Text Summarization using MASS with Copying and Coverage Mechanism and Length Embedding. Journal of KIISE, JOK, 49, 1, (2022), 25-31. DOI: 10.5626/JOK.2022.49.1.25.


[KCI Style]

정영준, 이창기, 고우영, 윤한준, "MASS와 복사 및 커버리지 메커니즘과 길이 임베딩을 이용한 한국어 문서 요약," 한국정보과학회 논문지, 제49권, 제1호, 25~31쪽, 2022. DOI: 10.5626/JOK.2022.49.1.25.


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