Uncertainty-aware text-to-program for question answering on structured electronic health records구조화된 전자의무기록에서 불확실성을 활용한 질의 응답 프로그램 생성

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Question Answering on Electronic Health Records (EHR-QA) has a significant impact on the healthcare domain, and it is being actively studied. Previous research on structured EHR-QA focuses on converting natural language queries into query language such as SQL or SPARQL (NLQ2Query), so the problem scope is limited to pre-defined data types by the specific query language. In order to expand the EHR-QA task beyond this limitation to handle multi-modal medical data and solve complex inference in the future, more primitive systemic language is needed. In this paper, we design the program-based model (NLQ2Program) for EHR-QA as the first step towards the future direction. We tackle MIMICSPARQL*, the graph-based EHR-QA dataset, via a program-based approach in a semi-supervised manner in order to overcome the absence of gold programs. Without the gold program, our proposed model shows comparable performance to the previous state-of-the-art model, which is an NLQ2Query model (0.9% gain). In addition, for a reliable EHR-QA model, we apply the uncertainty decomposition method to measure the ambiguity in the input question. We empirically confirmed data uncertainty is most indicative of the ambiguity in the input question.
Advisors
Choi, Edwardresearcher최윤재researcher
Description
한국과학기술원 :김재철AI대학원,
Publisher
한국과학기술원
Issue Date
2023
Identifier
325007
Language
eng
Description

학위논문(석사) - 한국과학기술원 : 김재철AI대학원, 2023.2,[iv, 20 p. :]

Keywords

Question answering▼aUncertainty▼aElectronic health records; 질의응답▼a불확실성▼a전자의무기록

URI
http://hdl.handle.net/10203/308223
Link
http://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=1032316&flag=dissertation
Appears in Collection
AI-Theses_Master(석사논문)
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