Modelling an individual’s Web search interests by utilizing navigational data

Hao Wen, L. Fang, L. Guan
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引用次数: 5

Abstract

An approach to model and quantify a userpsilas Web search interests using the userpsilas navigational data is presented. The approach is based on the premise that frequently visiting certain types of content indicates that the user is interested in that content. The proposed approach can be divided into three steps: monitoring the userpsilas navigational data; using the cumulative weight to determine a Web pagepsilas content; and employing the Naive Bayes Model for updating the userpsilas interest model. In order to demonstrate the effectiveness of the proposed model, experimental software is developed to analyze a userpsilas interests in sports. The experimental results demonstrate that the approach can effectively model the userpsilas interest. The proposed model could be integrated with personalized Web services.
利用导航数据对个人的网络搜索兴趣进行建模
提出了一种利用用户导航数据对用户Web搜索兴趣进行建模和量化的方法。该方法基于这样一个前提:频繁访问某些类型的内容表明用户对该内容感兴趣。该方法可分为三个步骤:监测用户的导航数据;使用累积权值确定网页内容;采用朴素贝叶斯模型更新用户兴趣模型。为了验证所提模型的有效性,我们开发了实验软件来分析某用户的体育兴趣。实验结果表明,该方法可以有效地对用户兴趣进行建模。所提出的模型可以与个性化Web服务集成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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