基于ART1神经网络的预处理Web使用数据聚类及ART1、K-Means和SOM聚类技术的比较分析

H. Yogish, G. Raju
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引用次数: 1

摘要

Web使用数据与Web活动有关,由于其局限性,大多数用于从Web使用数据中发现模式的技术都是聚类方法。本文提出了一种基于分区的方法,使用ART1 NN聚类算法根据Web用户的Web访问模式对其进行动态分组。在电子商务应用中,聚类方法用于生成营销策略、产品提供、个性化、网站适应,也用于在不久的将来可能被访问的预加载网页。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Clustering of Preprocessed Web Usage Data Using ART1 Neural Network and Comparative Analysis of ART1, K-Means and SOM Clustering Techniques
Web Usage Data is related to web activity, the majority of the techniques that have been used for pattern discovery from Web Usage Data are clustering methods due to their limitations this paper proposes a novel partition based approach for dynamically grouping Web users based on their Web access patterns using ART1 NN clustering algorithm. In e-commerce applications, clustering methods are used for the purpose of generating marketing strategies, product offerings, personalization, web site adaptation and also used for preload web pages which are likely to be accessed in near future.
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