Nutri-bullets: Summarizing Health Studies by Composing Segments
Darsh J. Shah, Lili Yu, Tao Lei, Regina Barzilay
Abstract
We introduce Nutri-bullets, a multi-document summarization task for health and nutrition. First, we present two datasets of food and health summaries from multiple scientific studies. Furthermore, we propose a novel extract-compose model to solve the problem in the regime of limited parallel data. We explicitly select key spans from several abstracts using a policy network, followed by composing the selected spans to present a summary via a task specific language model. Compared to state-of-the-art methods, our approach leads to more faithful, relevant and diverse summarization -- properties imperative to this application. For instance, on the BreastCancer dataset our approach gets a more than 50% improvement on relevance and faithfulness.
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Builds on3
- Evaluating the Factual Consistency of Abstractive Text SummarizationWojciech Kryscinski, Bryan McCann, Caiming Xiong, Richard SocherEMNLP 2020 · 67 citations
- Automatic Fact-Guided Sentence ModificationDarsh J. Shah, Tal Schuster, Regina BarzilayAAAI 2020 · 44 citations
- Blank Language ModelsTianxiao Shen, Victor Quach, Regina Barzilay, Tommi S. JaakkolaEMNLP 2020 · 8 citations
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