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Combined mining of Web server logs and web contents for classifying user navigation patterns and predicting users' future requests

机译:结合挖掘Web服务器日志和Web内容,以对用户导航模式进行分类并预测用户的未来请求

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We present a study of the automatic classification of web user navigation patterns and propose a novel approach to classifying user navigation patterns and predicting users' future requests. The approach is based on the combined mining of Web server logs and the contents of the retrieved web pages. The textual content of web pages is captured through extraction of character N-grams, which are combined with Web server log files to derive user navigation profiles. The approach is implemented as an experimental system, and its performance is evaluated based on two tasks: classification and prediction. The system achieves the classification accuracy of nearly 70% and the prediction accuracy of about 65%, which is about 20% higher than the classification accuracy by mining Web server logs alone. This approach may be used to facilitate better web personalization and website organization.
机译:我们提出了对Web用户导航模式的自动分类的研究,并提出了一种对用户导航模式进行分类并预测用户未来需求的新颖方法。该方法基于对Web服务器日志和所检索网页的内容的组合挖掘。网页的文本内容是通过提取字符N-gram来捕获的,这些字符与Web服务器日志文件结合在一起以导出用户导航配置文件。该方法被实现为实验系统,并且基于两个任务对性能进行评估:分类和预测。该系统实现了近70%的分类精度和约65%的预测精度,这比仅通过挖掘Web服务器日志获得的分类精度高约20%。此方法可用于促进更好的Web个性化和网站组织。

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