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One Size Does Not Fit All: Toward User- and Query-Dependent Ranking for Web Databases

机译:一种尺寸并不适合所有人:针对Web数据库的依赖于用户和查询的排名

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摘要

With the emergence of the deep web, searching web databases in domains such as vehicles, real estate, etc., has become a routine task. One of the problems in this context is ranking the results of a user query. Earlier approaches for addressing this problem have used frequencies of database values, query logs, and user profiles. A common thread in most of these approaches is that ranking is done in a user- and/or query-independent manner. This paper proposes a novel query- and user-dependent approach for ranking query results in web databases. We present a ranking model, based on two complementary notions of user and query similarity, to derive a ranking function for a given user query. This function is acquired from a sparse workload comprising of several such ranking functions derived for various user-query pairs. The model is based on the intuition that similar users display comparable ranking preferences over the results of similar queries. We define these similarities formally in alternative ways and discuss their effectiveness analytically and experimentally over two distinct web databases.
机译:随着深层网络的出现,在诸如车辆,房地产等领域中搜索网络数据库已成为日常工作。在这种情况下的问题之一是对用户查询的结果进行排名。解决此问题的较早方法是使用数据库值,查询日志和用户配置文件的频率。这些方法中的大多数的共同点是,排名是以用户和/或查询独立的方式进行的。本文提出了一种新颖的基于查询和用户的方法,用于对Web数据库中的查询结果进行排名。我们基于用户和查询相似性的两个互补概念提出一种排名模型,以得出给定用户查询的排名函数。该功能是从稀疏工作负载中获取的,该稀疏工作负载包括为各种用户查询对导出的几个此类排名函数。该模型基于这样的直觉,即相似用户显示出比相似查询结果可比的排名首选项。我们以替代方式正式定义了这些相似性,并在两个不同的Web数据库上通过分析和实验的方式讨论了它们的有效性。

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