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Payoffs and pitfalls in using knowledge-bases for consumer health search

机译:使用知识库的支付和陷阱为消费者健康搜索

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摘要

Consumer health search (CHS) is a challenging domain with vocabulary mismatch and considerable domain expertise hampering peoples' ability to formulate effective queries. We posit that using knowledge bases for query reformulation may help alleviate this problem. How to exploit knowledge bases for effective CHS is nontrivial, involving a swathe of key choices and design decisions (many of which are not explored in the literature). Here we rigorously empirically evaluate the impact these different choices have on retrieval effectiveness. A state-of-the-art knowledge-base retrieval modelthe Entity Query Feature Expansion modelwas used to evaluate these choices, which include: which knowledge base to use (specialised vs. general purpose), how to construct the knowledge base, how to extract entities from queries and map them to entities in the knowledge base, what part of the knowledge base to use for query expansion, and if to augment the knowledge base search process with relevance feedback. While knowledge base retrieval has been proposed as a solution for CHS, this paper delves into the finer details of doing this effectively, highlighting both payoffs and pitfalls. It aims to provide some lessons to others in advancing the state-of-the-art in CHS.
机译:消费者健康搜索(CHS)是一个具有挑战性的领域,具有词汇错配和相当多的域名专业知识,妨碍了人们制定有效查询的能力。我们使用知识库进行查询重构可能有助于缓解此问题。如何利用有效CHS的知识库是非凡的,涉及关键选择和设计决策的斯巴巴(其中许多没有在文献中探索)。在这里,我们严格凭经验评估了这些不同选择对检索效果的影响。最先进的知识库检索模型实体查询功能扩展模型用于评估这些选择,包括:使用哪个知识库(专用与通用目的),如何构建知识库,如何提取查询的实体并将其映射到知识库中的实体,用于查询扩展的知识库的哪些部分,以及增加具有相关反馈的知识库搜索过程。虽然知识库检索已被提出作为CHS的解决方案,但本文阐述了有效地进行了更精细的细节,突出了回报和陷阱。它旨在向他人提供一些教训,以推进最先进的CHS。

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