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Papers

Extractive Research Slide Generation Using Windowed Labeling Ranking

2021-06-06 · NAACL (sdp) 2021 6 · Athar Sefid, Jian Wu, Prasenjit Mitra, Lee Giles

Presentation slides describing the content of scientific and technical papers are an efficient and effective way to present that work. However, manually generating presentation slides is labor intensive. We propose a method to automatically generate slides for scientific papers based on a corpus of 5000 paper-slide pairs compiled from conference proceedings websites. The sentence labeling module of our method is based on SummaRuNNer, a neural sequence model for extractive summarization. Instead of ranking sentences based on semantic similarities in the whole document, our algorithm measures importance and novelty of sentences by combining semantic and lexical features within a sentence window. Our method outperforms several baseline methods including SummaRuNNer by a significant margin in terms of ROUGE score.

📄 PDF Abstract BibTeX arXiv:2106.03246

Code (1)

atharsefid/Extractive_Research_Slide_Generation_Using_Windowed_Labeling_Ranking 공식 구현 tf

Tasks

Extractive SummarizationSentence

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