Task-Oriented Social Ego Network Generation via Dynamic Collaborator Selection

Xing Fang, J. Zhan
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引用次数: 2

Abstract

Social networks are social structures derived from general human societies based upon certain scope or relationships. People in social networks, rather than behaving randomly, are highly organized and cooperative. To study evolutions of social networks, existing random graph theories only provide global views on network evolutions. Nevertheless, the evolutions of a social network should be examined from a local point of view. That is we can claim that someone's social network has evolved, if and only if the network is indeed evolved from the person's perspective. Hence, in this paper, we introduce the concept of social ego network. We propose two dynamic collaborator selection methods for the Task-Oriented Social Ego Network Generation process, which is believed to be the key process of social ego network evolution. We also conduct experimental simulations for our proposed methods.
基于动态合作者选择的任务导向社会自我网络生成
社会网络是基于一定范围或关系的一般人类社会衍生出来的社会结构。社交网络中的人们不是随机行为,而是高度组织性和合作性的。为了研究社会网络的演化,现有的随机图理论只提供了网络演化的全局视角。然而,社会网络的演变应该从当地的角度来审视。也就是说,我们可以声称某人的社交网络已经进化了,当且仅当这个网络确实是从这个人的角度进化的。因此,本文引入了社会自我网络的概念。本文提出了两种面向任务的社会自我网络生成过程的动态合作者选择方法,该过程被认为是社会自我网络进化的关键过程。我们还对我们提出的方法进行了实验模拟。
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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