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Japanese Abstractive Text Summarization using BERT

  • Advances in Science Technology and Engineering Systems Journal
  • Advances in Science, Technology and Engineering Systems Journal (ASTESJ)
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Abstract

In this study, we developed an automatic abstractive text summarization algorithm in Japanese using a neural network. We used a sequence-to-sequence encoder-decoder model for experimentation purposes. The encoder obtained a feature-based input vector of sentences using BERT. A transformer-based decoder returned the summary sentence from the output as generated by the encoder. This experiment was performed using the livedoor news corpus with the above model. However, issues arose as the same texts were repeated in the summary sentence.

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Publication details

DOI
10.25046/aj0506199
OpenAlex
W3118915714
Document type
article
Language
EN
Source
Advances in Science Technology and Engineering Systems Journal
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