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A collaborative filtering recommendation model using polynomial regression approach

  • Zhu Houkun*
  • , Luo Yuan
  • , Weng Chuliang
  • , Li Minglu
  • *此作品的通讯作者

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

In gird environment, collaborative filtering (CF) could be used for security recommendation when grid users face plenty of unknown security grid services. Also, CF recommender systems could be employed in the virtual machines managing platform to measure the creditability of each virtual machine. In this study, a polynomial regression based recommendation model on the basis of typical user-based CF is built to make security recommendation. In the model, a cluster of recommendation algorithms based on polynomial regression are derived according to various regression orders and dataset sizes. From our experiments, three significant conclusions are discovered in this model. Firstly, algorithms with lower regression orders make better predictions. Secondly, among algorithms with each fixed regression order, the best one satisfies that its dataset size is equal to its regression order in general. Thirdly, selecting appropriate regression order and dataset size could enhance recommendation quality.

源语言英语
主期刊名4th ChinaGrid Annual Conference, ChinaGrid 2009
134-138
页数5
DOI
出版状态已出版 - 2009
已对外发布
活动4th ChinaGrid Annual Conference, ChinaGrid 2009 - Yantai, 中国
期限: 21 8月 200922 8月 2009

出版系列

姓名4th ChinaGrid Annual Conference, ChinaGrid 2009

会议

会议4th ChinaGrid Annual Conference, ChinaGrid 2009
国家/地区中国
Yantai
时期21/08/0922/08/09

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