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Dimsum @LaySumm 20: BART-based Approach for Scientific Document Summarization (2010.09252v1)

Published 19 Oct 2020 in cs.CL

Abstract: Lay summarization aims to generate lay summaries of scientific papers automatically. It is an essential task that can increase the relevance of science for all of society. In this paper, we build a lay summary generation system based on the BART model. We leverage sentence labels as extra supervision signals to improve the performance of lay summarization. In the CL-LaySumm 2020 shared task, our model achieves 46.00\% Rouge1-F1 score.

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Authors (4)
  1. Tiezheng Yu (29 papers)
  2. Dan Su (101 papers)
  3. Wenliang Dai (24 papers)
  4. Pascale Fung (151 papers)
Citations (4)

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