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A Study of BERT for Non-Factoid Question-Answering under Passage Length Constraints

Published 19 Aug 2019 in cs.IR and cs.CL | (1908.06780v1)

Abstract: We study the use of BERT for non-factoid question-answering, focusing on the passage re-ranking task under varying passage lengths. To this end, we explore the fine-tuning of BERT in different learning-to-rank setups, comprising both point-wise and pair-wise methods, resulting in substantial improvements over the state-of-the-art. We then analyze the effectiveness of BERT for different passage lengths and suggest how to cope with large passages.

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