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数字图书馆推荐系统协同过滤算法改进及实证分析
引用本文:朱白.数字图书馆推荐系统协同过滤算法改进及实证分析[J].图书情报工作,2017,61(9):130-134.
作者姓名:朱白
作者单位:商洛学院图书馆 商洛 726000
基金项目:本文系陕西省社科界2017年度重大理论与现实问题研究项目“新时期陕西省农家书屋可持续发展的困境与对策研究”(项目编号:2017Z057)研究成果之一。
摘    要:目的/意义] 为了提高传统协同过滤算法的计算速度,解决目标用户随着时间推移发生兴趣偏移而导致推荐系统质量下降的问题,以期进一步提升推荐系统运行效率和推荐质量。方法/过程] 提出预先计算用户相似度算法和引入时间评分权重计算相似度矩阵的两种算法的改进,并利用Hadoop平台实证分析改进后的算法。结果/结论] 实验结果证明:预先计算用户相似度算法缩短了对读者推送相关信息的时间,从而有效地提升了计算速度;引入时间评分权重计算相似度矩阵大大降低了MAE值,从而提高了推荐质量,两种算法同时应用后推荐系统在计算速度、准确率和新颖性方面都有显著提升。

关 键 词:推荐系统  协同过滤算法  相似度  时间评分权重  MAE  
收稿时间:2017-02-23

The Improvement and Empirical Analysis of the Collaborative Filtering Algorithm About the Recommendation System of Digital Library
Zhu Bai.The Improvement and Empirical Analysis of the Collaborative Filtering Algorithm About the Recommendation System of Digital Library[J].Library and Information Service,2017,61(9):130-134.
Authors:Zhu Bai
Institution:Shangluo University Library, Shangluo 726000
Abstract:Purpose/significance]This paper aims to improve the calculating speed of the traditional collaborative filtering algorithm, to solve the problems that the quality of the recommendation system declines because the target users may have the interest shift as time goes on, and to promote the operating efficiency and recommendation quality furtherly.Method/process]An improved algorithm which calculates the user similarity algorithm in advance and introduces the time score weight to calculate the similarity matrix is proposed, and this improved algorithm is analysed empirically with Hadhoop.Result/conclusion]The pre-calculation of user similarity algorithm can improve the calculation speed effectively, which would shorten the time when system sends the readers related informations. The introduction of the time score weight to calculate similarity matrix can reduce MAE value which would improve recommendation quality. And the recommendation system has a significant improvement in the calculating speed, accuracy and novelty when the two algorithms are applied simultaneously.
Keywords:recommendation system  collaborative filtering algorithm  similarity  time score weight  MAE  
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