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Navigation-Aided Retrieval

机译:导航辅助检索

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摘要

Users searching for information in hypermedia environments often perform querying followed by manual navigation. Yet, the conventional text/hypertext retrieval paradigm does not explicity take post-query navigation into account. This paper proposes a new retrieval paradigm, called navigation-aided retrieval (NAR), which treats both querying and navigation as first-class activities. In the NAR. paradigm, querying is seen as a means to identify starting points for navigation, and navigation is guided based on information supplied in the query. NAR is a generalization of the conventional probabilistic information retrieval paradigm, which implicitly assumes no navigation takes place.rnThis paper presents a formal model for navigation-aided retrieval, and reports empirical results that point to the real-world applicability of the model. The experiments were performed over a large Web corpus provided by TREC. using human judgments on a new rating scale developed for navigation-aided retrieval. In the case of ambiguous queries, the new retrieval model identifies good starting points for post-query navigation. For less ambiguous queries that need not be paired with navigation, the output, closely matches that of a conventional retrieval system.
机译:在超媒体环境中搜索信息的用户经常执行查询,然后进行手动导航。但是,常规的文本/超文本检索范例并未明确考虑到查询后导航。本文提出了一种新的检索范式,称为导航辅助检索(NAR),它将查询和导航都视为头等活动。在NAR中。在范例中,查询被视为标识导航起点的一种手段,并且基于查询中提供的信息来指导导航。 NAR是常规概率信息检索范式的概括,它隐式地假设没有导航发生。本文提出了一种导航辅助检索的正式模型,并报告了表明该模型在现实世界中的适用性的实证结果。实验是在TREC提供的大型Web语料库上进行的。在开发用于导航辅助检索的新评级量表上使用人工判断。对于模棱两可的查询,新的检索模型为查询后导航确定了良好的起点。对于不需要与导航配对的不太模糊的查询,其输出与常规检索系统的输出紧密匹配。

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