通过序列对齐对Web会话进行集群

Weinan Wang, Osmar R Zaiane
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引用次数: 136

摘要

在Web挖掘的背景下,聚类可以用于聚类相似的点击流,以确定电子学习中的学习行为,或电子商务中的一般站点访问行为。文献中提出的处理聚类Web会话的大多数算法都将会话视为一段时间内访问的页面集,而不考虑点击流访问的顺序。在比较Web会话之间的相似性时,这有一个重要的后果。本文提出了一种基于序列对齐的新算法来测量Web会话之间的相似性,其中会话是按时间顺序排列的页面访问序列。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Clustering Web sessions by sequence alignment
In the context of Web mining, clustering could be used to cluster similar click-streams to determine learning behaviours in the case of e-learning, or general site access behaviours in e-commerce. Most of the algorithms presented in the literature to deal with clustering Web sessions treat sessions as sets of visited pages within a time period and don't consider the sequence of the click-stream visitation. This has a significant consequence when comparing similarities between Web sessions. We propose in this paper a new algorithm based on sequence alignment to measure similarities between Web sessions where sessions are chronologically ordered sequences of page accesses.
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