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A Recommendation Method for Online Dating Networks Based on Social Relations and Demographic Information

机译:基于社会关系和人口统计学信息的在线约会网络推荐方法

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A new relationship type of social networks - online dating - are gaining popularity. With a large member base, users of a dating network are overloaded with choices about their ideal partners. Recommendation methods can be utilized to overcome this problem. However, traditional recommendation methods do not work effectively for online dating networks where the dataset is sparse and large, and a two-way matching is required. This paper applies social networking concepts to solve the problem of developing a recommendation method for online dating networks. We propose a method by using clustering, SimRank and adapted SimRank algorithms to recommend matching candidates. Empirical results show that the proposed method can achieve nearly double the performance of the traditional collaborative filtering and common neighbor methods of recommendation.
机译:社交网络的一种新的关系类型-在线约会-越来越受欢迎。拥有庞大的会员基础,约会网络的用户对他们理想的合作伙伴的选择无所适从。推荐方法可以用来克服这个问题。但是,传统的推荐方法对于数据集稀少且需要双向匹配的在线约会网络无法有效工作。本文应用社交网络概念来解决开发在线约会网络推荐方法的问题。我们提出了一种通过使用聚类,SimRank和适应的SimRank算法来推荐匹配候选者的方法。实验结果表明,所提方法的性能几乎是传统协作过滤和推荐常见邻居方法的两倍。

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