Diversity Balancing in Two-Stage Collaborative Filtering for Book Recommendation Systems

Rifqi Fauzia Muttaqien, Dade Nurjanah, Hani Nurrahmi
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Abstract

A book recommender system is a system used to provide relevant book recommendations for readers. One approach that is often used in recommender systems is Collaborative Filtering (CF). CF provides book recommendations based on books liked by other similar users. However, CF only provides recommendations for items that are popular, so items that are less popular will be difficult to recommend. Therefore, we propose a book recommendation system based on Two-stages CF using the Diversity Balancing method. Diversity Balancing method in CF is used to balance diversity in the recommendation results by replacing popular items with less popular relevant items. System accuracy is measured using precision and recall, while diversity is measured using personal diversity and aggregate diversity. The test results show that the accuracy of the proposed system increases with the increasing number of recommended items. meanwhile, the diversity of recommended items continues to decrease as more items are included in the recommendation list. In consideration of the trade-off between accuracy and diversity, our system achieves a recall score of 0.301, a precision score of 0.282, a PD score of 0.048, and an AD score of 0.095 with a recommendation list size of 8 items.
图书推荐系统两阶段协作过滤中的多样性平衡
图书推荐系统是一种用于向读者提供相关图书推荐的系统。协作过滤(CF)是推荐系统中常用的一种方法。协同过滤根据其他类似用户喜欢的图书提供图书推荐。然而,CF 只为受欢迎的项目提供推荐,因此不太受欢迎的项目将很难被推荐。因此,我们提出了一种基于两阶段 CF 的图书推荐系统,并使用了多样性平衡法。CF 中的 "多样性平衡法 "是通过用不太热门的相关项目替换热门项目来平衡推荐结果的多样性。系统的准确度用精确度和召回率来衡量,多样性则用个人多样性和总体多样性来衡量。测试结果表明,建议系统的准确率随着推荐项目数量的增加而提高,同时,随着推荐列表中项目的增加,推荐项目的多样性不断降低。考虑到准确性和多样性之间的权衡,我们的系统在推荐列表规模为 8 项时的召回率为 0.301,准确率为 0.282,PD 为 0.048,AD 为 0.095。
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