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Identifying Core Users Based on Trust Relationships and Interest Similarity in Recommender System

机译:基于推荐系统的信任关系和利益相似性识别核心用户

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With the rapid development of Internet, the explosive growth of information challenges people's capability on finding out items fitting to their own interests. The emergence of recommender system helps users to make decisions to a certain degree. So far, most of the studies pay much attention to designing or improving recommendation algorithms. However, few works consider the extraction of core users with whom recommender systems can generate satisfactory recommendation. In this paper, we propose new approaches to identifying core users based on trust relationships and interest similarity. The trust degree and interest similarity between all user pairs are calculated and sorted first, and two strategies based on frequency and weight of location are used to select core users. Experiments show the effectiveness of the extraction of core users and prove that 20% of core users enable recommender systems to achieve more than 90% of the accuracy of the top-N recommendation.
机译:随着互联网的快速发展,信息的爆炸性增长挑战人们对寻找适合其自身利益的物品的能力。推荐系统的出现有助于用户在一定程度上做出决定。到目前为止,大多数研究都要注意设计或改进推荐算法。然而,很少有效考虑与推荐系统可以产生令人满意的推荐的核心用户的提取。在本文中,我们提出了基于信任关系和利益相似性识别核心用户的新方法。首先计算和排序所有用户对之间的信任程度和利益相似性,并且使用基于位置的频率和权重的两个策略来选择核心用户。实验表明了核心用户提取的有效性,并证明了20%的核心用户能够实现推荐系统,以实现Top-N建议书的90%以上。

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