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Strategies for Improving the Efficacy of Fusion Question Answering Systems

机译:提高融合问答系统功效的策略

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Web search engines typically retrieve a large number of web pages and overload business analysts with irrelevant information. One approach that has been proposed for overcoming some of these problems is automated Question Answering (QA). This paper describes a case study that was designed to determine the efficacy of QA systems for generating answers to original, fusion, list questions (questions that have not previously been asked and answered, questions for which the answer cannot be found on a single web site, and questions for which the answer is a list of items). Results indicate that QA algorithms are not very good at producing complete answer lists and that searchers are not very good at constructing answer lists from snippets. These findings indicate a need for QA research to focus on crowd sourcing answer lists and improving output format.
机译:Web搜索引擎通常会检索大量网页,并使业务分析人员不相关的信息过多。为解决其中一些问题而提出的一种方法是自动问答(QA)。本文介绍了一个案例研究,旨在确定QA系统生成原始,融合,列表问题(先前未曾提出和回答过的问题,无法在单个网站上找到答案的问题)答案的功效,以及答案是项目列表的问题)。结果表明,质量检查算法在生成完整的答案列表方面不是很擅长,搜索者也不是从片段中构造答案列表就很出色。这些发现表明质量保证研究需要集中于众包答案列表和改进输出格式。

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