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A Paragraph-level Multi-task Learning Model for Scientific Fact-Verification

2020-12-28 21:51:31
Xiangci Li, Gully Burns, Nanyun Peng

Abstract

Even for domain experts, it is a non-trivial task to verify a scientific claim by providing supporting or refuting evidence rationales. The situation worsens as misinformation is proliferated on social media or news websites, manually or programmatically, at every moment. As a result, an automatic fact-verification tool becomes crucial for combating the spread of misinformation. In this work, we propose a novel, paragraph-level, multi-task learning model for the SciFact task by directly computing a sequence of contextualized sentence embeddings from a BERT model and jointly training the model on rationale selection and stance prediction.

Abstract (translated)

URL

https://arxiv.org/abs/2012.14500

PDF

https://arxiv.org/pdf/2012.14500.pdf


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