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PipeCF: a DHT-based Collaborative Filtering recommendation system

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【作者】 申瑞民杨帆韩鹏谢波

【Author】 SHEN Rui-min YANG Fan HAN Peng XIE Bo(Department of Computer Science and Engineering, Shanghai Jiaotong University, Shanghai 200030, China)

【机构】 Department of Computer Science and Engineering Shanghai Jiaotong UniversityShanghai 200030ChinaChina

【摘要】 <正>Collaborative Filtering (CF) technique has proved to be one of the most successful techniques in recommendation systems in recent years. However, traditional centralized CF system has suffered from its limited scalability as calculation complexity increases rapidly both in time and space when the record in the user database increases. Peer-to-peer (P2P) network has attracted much attention because of its advantage of scalability as an alternative architecture for CF systems. In this paper, authors propose a decentralized CF algorithm, called PipeCF, based on distributed hash table (DHT) method which is the most popular P2P routing algorithm because of its efficiency, scalability, and robustness. Authors also propose two novel approaches: significance refinement (SR) and unanimous amplification (UA), to improve the scalability and prediction accuracy of DHT-based CF algorithm. The experimental data show that our DHT-based CF system has better prediction accuracy, efficiency and scalability than traditiona

【Abstract】 Collaborative Filtering (CF) technique has proved to be one of the most successful techniques in recommendation systems in recent years. However, traditional centralized CF system has suffered from its limited scalability as calculation complexity increases rapidly both in time and space when the record in the user database increases. Peer-to-peer (P2P) network has attracted much attention because of its advantage of scalability as an alternative architecture for CF systems. In this paper, authors propose a decentralized CF algorithm, called PipeCF, based on distributed hash table (DHT) method which is the most popular P2P routing algorithm because of its efficiency, scalability, and robustness. Authors also propose two novel approaches: significance refinement (SR) and unanimous amplification (UA), to improve the scalability and prediction accuracy of DHT-based CF algorithm. The experimental data show that our DHT-based CF system has better prediction accuracy, efficiency and scalability than traditional CF systems.

【基金】 Project(No.60372078)supportedbytheNationalNaturalScienceFoundationofChina
  • 【文献出处】 Journal of Zhejiang University Science A(Science in Engineering) ,浙江大学学报A(应用物理及工程版)(英文版) , 编辑部邮箱 ,2005年02期
  • 【分类号】TN915
  • 【下载频次】59
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