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Web usage prediction and recommendation using web session clustering

机译:使用Web会话群集的Web使用预测和推荐

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In recent years, a strong interest has been given to web usage prediction and recommendation methods to improve e-commerce, search engines and other online applications. There have been various efforts carried out in this field, particularly focused on using recordings of web user interactions with websites. In this context, our research focuses on developing a novel approach for web prediction and recommendation. The proposed method relies on hierarchical session clustering by sequence similarity measure and takes advantage of access activity time and access position in prediction session to make a recommendation. The performed experiments reveal that hierarchical parameter and prediction accuracy are relevant. In addition, the paper introduces cost estimation to adapt web visitor behavior to web business purposes using prediction ansd recommendation results.
机译:近年来,已经对Web使用预测和推荐方法提供了强烈的兴趣,以改善电子商务,搜索引擎和其他在线应用程序。在此领域中有各种努力,特别是使用Web用户与网站的互动录制的录制。在这种情况下,我们的研究侧重于开发一种新的网页预测方法和推荐方法。该方法依赖于序列相似度量的分层会话聚类,并利用预测会话中的访问活动时间和访问位置来提出推荐。执行的实验表明,分层参数和预测精度是相关的。此外,本文介绍了使用预测ANSD推荐结果对Web业务目的调整Web访问者行为的成本估算。

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