Application Areas of Community Detection: A Review

Arzum Karatas, Serap Sahin
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引用次数: 32

Abstract

In the realm of today's real world, information systems are represented by complex networks. Complex networks contain a community structure inherently. Community is a set of members strongly connected within members and loosely connected with the rest of the network. Community detection is the task of revealing inherent community structure. Since the networks can be either static or dynamic, community detection can be done on both static and dynamic networks as well. In this study, we have talked about taxonomy of community detection methods with their shortages. Then we examine and categorize application areas of community detection in the realm of nature of complex networks (i.e., static or dynamic) by including sub areas of criminology such as fraud detection, criminal identification, criminal activity detection and bot detection. This paper provides a hot review and quick start for researchers and developers in community detection area.
社区检测的应用领域综述
在当今的现实世界中,信息系统由复杂的网络表示。复杂网络本质上包含着一种社区结构。社区是一组成员的集合,成员之间紧密相连,与网络的其他部分松散相连。群落检测是揭示固有群落结构的任务。由于网络可以是静态的,也可以是动态的,因此社区检测也可以在静态和动态网络上进行。在本研究中,我们讨论了社区检测方法的分类和它们的不足。然后,我们通过包括犯罪学的子领域,如欺诈检测、犯罪识别、犯罪活动检测和机器人检测,在复杂网络(即静态或动态)的性质领域中检查和分类社区检测的应用领域。本文为社区检测领域的研究人员和开发人员提供了一个热点综述和快速入门。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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