广义Web会话聚类的一种新的相似度度量方法

Qianwen Yang, Jisong Kou, Fuzan Chen, Minqiang Li
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引用次数: 4

摘要

本文定义了一种基于用户导航模式共同路径(SMCP)的广义web会话聚类相似度度量。它将两个会议之间公共路径的相似性分为内部部分和外部部分。采用传统的k-means方法对相似度度量进行了性能测试,并与基于访问顺序(VOB)的相似度度量和基于路径角度(PAB)的相似度度量进行了比较,在真实数据集和合成数据集上的实验表明,使用SMCP相似度度量在剪影值方面比基于VOB和PAB相似度度量提高了10%以上的准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A New Similarity Measure for Generalized Web Session Clustering
A new similarity measure for generalized web session clustering is defined on the common paths of users' navigation patterns (SMCP) in this paper. It divides the similarity of common paths between two sessions into the inner part and the outer part. The traditional k-means is employed to test the performance of similarity measure and by comparing with the visiting order Based (VOB) similarity measure and the path angles Based (PAB) similarity measure, the experiments on both real and synthetic datasets show that clustering using the proposed similarity measure SMCP can yield more than 10% higher accuracy than the VOB and PAB similarity measure in terms of Silhouette value.
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