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Models and Data for Simple Applications of BERT for Ad Hoc Document Retrieval

  • arXiv (Cornell University)
  • Cornell University
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Abstract

Following recent successes in applying BERT to question answering, we explore simple applications to ad hoc document retrieval. This required confronting the challenge posed by documents that are typically longer than the length of input BERT was designed to handle. We address this issue by applying inference on sentences individually, and then aggregating sentence scores to produce document scores. Experiments on TREC microblog and newswire test collections show that our approach is simple yet effective, as we report the highest average precision on these datasets by neural approaches that we are aware of.

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Publication details

DOI
10.48550/arxiv.1903.10972
OpenAlex
W2923890923
Document type
preprint
Language
EN
Source
arXiv (Cornell University)
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