Detection of Multi-Relations Based on Semantic Communities Behaviors

Yan-ping Zhao, Lei Feng, Lei Chen
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引用次数: 3

Abstract

In this paper, we represent a novel approach for detecting multi-relations among network community related activities. By using semantic information and social network analysis (SNA). We can mining various features of groups of people through their network text inter-communications, such as E-mail or BBS and the like. Our method also differentiates and labels distinct relations between people from different aspects of their works, which may help security or management officers to be objective through analyzing the framework of the semantic communities distribution, to extract the clues they need to support the early preventions or controls. The dataset used to validate this study is a collection of Email data from one of Chinese research unit, and the E-mail records from Enron corp., which is retrieved freely from the Internet. This method could be applied to many similar researches for some given purposes.
基于语义群体行为的多关系检测
在本文中,我们提出了一种新的方法来检测网络社区相关活动之间的多关系。通过使用语义信息和社会网络分析(SNA)。我们可以通过网络文本间的交流,如E-mail或BBS等,挖掘人群的各种特征。我们的方法还可以从不同的工作方面区分和标记不同的人之间的关系,这可以帮助安全或管理人员通过分析语义社区分布的框架客观地提取他们需要的线索,以支持早期的预防或控制。用于验证本研究的数据集是来自中国某研究单位的电子邮件数据的集合,以及来自安然公司的电子邮件记录,这些电子邮件记录是从互联网上免费检索的。这种方法可以应用于许多类似的研究。
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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