题名 | Clustering method using weighted preference based on RFM score for personalized recommendation system in u-commerce |
作者 | |
发表日期 | 2014 |
会议名称 | 8th International Conference on Ubiquitous Information Technologies and Applications, CUTE 2013 |
会议录名称 | Lecture Notes in Electrical Engineering
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ISBN | 9783642416705 |
ISSN | 1876-1100 |
卷号 | 280 LNEE |
页码 | 131-140 |
会议日期 | December 18-20, 2013 |
会议地点 | Danang, Vietnam |
摘要 | This paper proposes a new clustering method using the weighted preference based on RFM(Recency, Frequency, Monetary) Score for personalized recommendation in u-commerce under ubiquitous computing environment which is required by real time accessibility and agility. In this paper, using an implicit method without onerous question and answer to the users, not used user's profile for rating, it is necessary for us to extract the most frequent purchase items from the whole purchase data and to calculate the weighted preference of item for customer in order to reduce customers' search effort, to reflect frequently changing trends by emphasizing the important items and to improve the rate of recommendation with high purchasability. To verify improved better performance of proposing system than the previous systems, we carry out the experiments in the same dataset collected in a cosmetic internet shopping mall. © Springer-Verlag Berlin Heidelberg 2014. |
关键词 | Collaborative filtering K-means clustering Rfm analysis |
DOI | 10.1007/978-3-642-41671-2_18 |
URL | 查看来源 |
语种 | 英语English |
Scopus入藏号 | 2-s2.0-84958547394 |
引用统计 | |
文献类型 | 会议论文 |
条目标识符 | https://repository.uic.edu.cn/handle/39GCC9TT/6506 |
专题 | 理工科技学院 |
作者单位 | 1.Department of Computer Science,Chungbuk National University,Cheongju,South Korea 2.Department of Computer Science,Namseoul University,Cheonan-City,South Korea 3.Computer Science and Technology,DST,BNU-HKBU United International College,Hong Kong 4.Chungbuk Health and Science University,Chungbuk,South Korea |
推荐引用方式 GB/T 7714 | Cho, Young Sung,Moon, Song Chul,Jeong, Seon Philet al. Clustering method using weighted preference based on RFM score for personalized recommendation system in u-commerce[C], 2014: 131-140. |
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