一种抑制在线社交网络中负面信息级联的有效方法

Yan Wang, Li Li, ZhaoHua Wang, Xiaohua Zheng
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引用次数: 0

摘要

信息级联被认为是造成灾难性社会网络现象的主要因素。网络社区的聚类可以阻断网络社交网络中负面信息和用户行为的级联。面对有限的网络资源,本文以网络结构优化与邻居级联行为之间的交互关系为切入点,研究了紧急情况下负信息级联的约束方法。本文提出了一种抑制负面信息级联的方法,通过逻辑移除链接(CLLR)来改善网络社区的聚类。CLLR方法通过逻辑地去除有限的高间性链路,提高了网络中的社区密度,从而有效地阻断了信息级联。实验结果表明,CLLR方法显著提高了网络的聚类性,有效地阻断了osn中信息级联的速度和范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient method for restraining negative information cascades in online social networks
Information cascades is recognized as a major factor in disastrous social network phenomenons. The clustering of network community can block the cascade of negative information and users' behaviors in online social networks (OSNs). Confronting limited network resources, this paper takes the interaction relationship between network structure optimizing and neighbors' behaviors cascading as the breakthrough point, and study the restrain method of negative information cascades under emergency. This paper proposes a method for restraining the cascade of negative information, which is in order to improve the clustering of network communities by means of links that are logically removed (termed CLLR). By limited links with high betweenness being logically removed, CLLR method enhances the community density in a network, thereby effectively block information cascades. Experimental results show that CLLR method significantly improve the clustering of a network, efficiently block the speed and scope of information cascades in OSNs.
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