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A Paraphrase Generation System for EHR Question Answering

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Paper overview

Abstract

This paper proposes a dataset and method for automatically generating paraphrases for clinical questions relating to patient-specific information in electronic health records (EHRs). Crowdsourcing is used to collect 10,578 unique questions across 946 semantically distinct paraphrase clusters. This corpus is then used with a deep learning-based question paraphrasing method utilizing variational autoencoder and LSTM encoder/decoder. The ultimate use of such a method is to improve the performance of automatic question answering methods for EHRs.

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Publication details

DOI
10.18653/v1/w19-5003
OpenAlex
W2970641033
Document type
conference-paper
Language
EN
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