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首页> 外文期刊>Sadhana: Academy Proceedings in Engineering Science >Prediction of users webpage access behaviour using association rule mining
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Prediction of users webpage access behaviour using association rule mining

机译:使用关联规则挖掘预测用户网页访问行为

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Web Usage mining is a technique used to identify the user needs from the web log. Discovering hidden patterns from the logs is an upcoming research area. Association rules play an important role in many web mining applications to detect interesting patterns. However, it generates enormous rules that cause researchers to spend ample time and expertise to discover the really interesting ones. This paper works on the server logs from the MSNBC dataset for the month of September 1999. This research aims at predicting the probable subsequent page in the usage of web pages listed in this data based on their navigating behaviour by using Apriori prefix tree (PT) algorithm. The generated rules were ranked based on the support, confidence and lift evaluation measures. The final predictions revealed that the interestingness of pages mainly depended on the support and lift measure whereas confidence assumed a uniform value among all the pages. It proved that the system guaranteed 100% confidence with the support of 1.3E-05. It revealed that the pages such as Front page, On-air, News, Sports and BBS attracted more interested subsequent users compared to Travel, MSN-News and MSN-Sports which were of less interest.
机译:Web用法挖掘是一种用于从Web日志中识别用户需求的技术。从日志中发现隐藏的模式是一个即将到来的研究领域。关联规则在许多Web挖掘应用程序中检测重要模式方面起着重要作用。但是,它产生了巨大的规则,导致研究人员花费大量时间和专业知识来发现真正有趣的规则。本文使用1999年9月来自MSNBC数据集的服务器日志进行研究。本研究旨在通过使用Apriori前缀树(PT)根据其导航行为来预测此数据中列出的网页的使用情况中可能的后续页面。算法。根据支持,信心和提升评估方法对生成的规则进行排名。最终的预测表明,页面的趣味性主要取决于支撑和提升措施,而置信度在所有页面中均取一个统一的值。事实证明,该系统在1.3E-05的支持下保证了100%的置信度。它显示,与不那么感兴趣的旅行,MSN新闻和MSN体育相比,诸如首页,广播,新闻,体育和BBS之类的页面吸引了更多感兴趣的后续用户。

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