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Enabling concept-based relevance feedback for information retrieval on the WWW

机译:在WWW上启用基于概念的相关性反馈以进行信息检索

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摘要

The World Wide Web is a world of great richness, but finding information on the Web is also a great challenge. Keyword-based querying has been an immediate and efficient way to specify and retrieve related information that the user inquires. However, conventional document ranking based on an automatic assessment of document relevance to the query may not be the best approach when little information is given, as in most cases. In order to clarify the ambiguity of the short queries given by users, we propose the idea of concept-based relevance feedback for Web information retrieval. The idea is to have users give two to three times more feedback in the same amount of time that would be required to give feedback for conventional feedback mechanisms. Under this design principle, we apply clustering techniques to the initial search results to provide concept-based browsing. We show the performance of various feedback interface designs and compare their pros and cons. We measure precision and relative recall to show how clustering improves performance over conventional similarity ranking and, most importantly, we show how the assistance of concept-based presentation reduces browsing labor.
机译:万维网是一个非常丰富的世界,但是在Web上查找信息也是一个巨大的挑战。基于关键字的查询已成为指定和检索用户查询的相关信息的直接有效方法。但是,像大多数情况一样,在给出的信息很少的情况下,基于自动评估与查询的文档相关性的常规文档排名可能不是最佳方法。为了澄清用户给出的简短查询的歧义,我们提出了用于Web信息检索的基于概念的相关性反馈的想法。这个想法是让用户在相同的时间内给常规反馈机制提供反馈所需的反馈量多出两到三倍。根据此设计原则,我们将聚类技术应用于初始搜索结果,以提供基于概念的浏览。我们展示了各种反馈接口设计的性能,并比较了它们的优缺点。我们测量精度和相对召回率,以显示聚类如何比常规相似性排名提高性能,最重要的是,我们显示基于概念的表示形式的帮助如何减少浏览工作。

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