Improvising Singular Value Decomposition by KNN for Use in Movie Recommender Systems

Sukanya Patra, Boudhayan Ganguly
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引用次数: 1

Abstract

Abstract Online recommender systems are an integral part of e-commerce. There are a plethora of algorithms following different approaches. However, most of the approaches except the singular value decomposition (SVD), do not provide any insight into the underlying patterns/concepts used in item rating. SVD used underlying features of movies but are computationally resource-heavy and performs poorly when there is data sparsity. In this article, we perform a comparative study among several pre-processing algorithms on SVD. In the experiments, we have used the MovieLens 1M dataset to compare the performance of these algorithms. KNN-based approach was used to find out K-nearest neighbors of users and their ratings were then used to impute the missing values. Experiments were conducted using different distance measures, such as Jaccard and Euclidian. We found that when the missing values were imputed using the mean of similar users and the distance measure was Euclidean, the KNN-based (K-Nearest Neighbour) approach of pre-processing the SVD was performing the best. Based on our comparative study, data managers can choose to employ the algorithm best suited for their business.
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基于KNN的随机奇异值分解在电影推荐系统中的应用
在线推荐系统是电子商务的重要组成部分。有太多的算法遵循不同的方法。然而,除了奇异值分解(SVD)之外,大多数方法都不提供对项目评级中使用的底层模式/概念的任何洞察。SVD使用了电影的底层特征,但是计算资源很重,当存在数据稀疏性时性能很差。在本文中,我们对SVD的几种预处理算法进行了比较研究。在实验中,我们使用MovieLens 1M数据集来比较这些算法的性能。采用基于knn的方法找出用户的k近邻,然后使用他们的评分来估算缺失值。实验采用了不同的距离度量,如Jaccard和Euclidian。我们发现,当使用相似用户的平均值来输入缺失值并且距离度量为欧几里得时,基于knn (k -最近邻)的SVD预处理方法表现最好。根据我们的比较研究,数据管理人员可以选择使用最适合其业务的算法。
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