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Distributed Data Distribution Mechanism in Social Network Based on Fuzzy Clustering

机译:基于模糊聚类的社交网络分布式数据分发机制

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With the development of Internet, especially the success of social media like Facebook, Renren and Douban, social network has become an important part of people's life. For social applications, one of the key problems to be solved is how to distribute data accurately to different users and groups in high speed. In this paper, we introduce fuzzy clustering into social network analysis. Users with similar interests are clustered into the same network according to fuzzy similarities. Our goal is to study how such clustering can enhance data distribution to the largest extent. We take 3,000 user's data from Douban.com, fetch fuzzy social relationship, and simulate data transmission with a theme-based pub/sub mechanism. Experiments show that network clustering based on fuzzy clustering can improve data distribution effectively, while remain robust in highly dynamic environment.
机译:随着互联网的发展,尤其是社交媒体等社交媒体的成功,如Facebook,Renren和Douban,社交网络已成为人生生命的重要组成部分。对于社交应用程序,要解决的关键问题之一是如何将数据准确分发到不同的用户和群组的高速。在本文中,我们将模糊聚类介绍为社会网络分析。具有类似兴趣的用户根据模糊的相似性集聚到同一网络中。我们的目标是研究这种聚类如何能够提升数据分布到最大程度。我们从Douban.com,获取模糊社交关系中获取3,000个用户数据,并使用基于主题的PUB / SUB机制模拟数据传输。实验表明,基于模糊聚类的网络聚类可以有效地改善数据分布,而在高度动态环境中保持稳健。

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