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ReasonBERT: Pre-trained to Reason with Distant Supervision

2021-09-10 14:49:44
Xiang Deng, Yu Su, Alyssa Lees, You Wu, Cong Yu, Huan Sun

Abstract

We present ReasonBert, a pre-training method that augments language models with the ability to reason over long-range relations and multiple, possibly hybrid contexts. Unlike existing pre-training methods that only harvest learning signals from local contexts of naturally occurring texts, we propose a generalized notion of distant supervision to automatically connect multiple pieces of text and tables to create pre-training examples that require long-range reasoning. Different types of reasoning are simulated, including intersecting multiple pieces of evidence, bridging from one piece of evidence to another, and detecting unanswerable cases. We conduct a comprehensive evaluation on a variety of extractive question answering datasets ranging from single-hop to multi-hop and from text-only to table-only to hybrid that require various reasoning capabilities and show that ReasonBert achieves remarkable improvement over an array of strong baselines. Few-shot experiments further demonstrate that our pre-training method substantially improves sample efficiency.

Abstract (translated)

URL

https://arxiv.org/abs/2109.04912

PDF

https://arxiv.org/pdf/2109.04912.pdf


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