使用基于阈值的偏好分布的代表性天际线

Atish Das Sarma, Ashwin Lall, Danupon Nanongkai, R. Lipton, Jun Xu
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引用次数: 56

摘要

近年来,对天际线及其变化的研究受到了相当大的关注。天际线本质上是数据库中最有趣的(未决定的)元组的集合。然而,由于天际线通常非常大,许多研究工作一直致力于确定较小的子集(例如k)“代表性天际线”点。有代表性的天际线有几种不同的定义。大多数这些公式都是直观的,因为它们试图在整个天际线上实现某种聚类“扩展”,有k个点。在这项工作中,我们采取了更有原则的方法来定义具有代表性的天际线目标。我们的主要贡献之一是制定了显示k个代表性天际线点的问题,以便随机用户点击其中一个点的概率最大化。
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Representative skylines using threshold-based preference distributions
The study of skylines and their variants has received considerable attention in recent years. Skylines are essentially sets of most interesting (undominated) tuples in a database. However, since the skyline is often very large, much research effort has been devoted to identifying a smaller subset of (say k) “representative skyline” points. Several different definitions of representative skylines have been considered. Most of these formulations are intuitive in that they try to achieve some kind of clustering “spread” over the entire skyline, with k points. In this work, we take a more principled approach in defining the representative skyline objective. One of our main contributions is to formulate the problem of displaying k representative skyline points such that the probability that a random user would click on one of them is maximized.
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