Toward a generalized notion of discrete time for modeling temporal networks

IF 1.4 Q2 SOCIAL SCIENCES, INTERDISCIPLINARY
Konstantin Kueffner, Mark Strembeck
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引用次数: 0

Abstract

Abstract Many real-world networks, including social networks and computer networks for example, are temporal networks. This means that the vertices and edges change over time. However, most approaches for modeling and analyzing temporal networks do not explicitly discuss the underlying notion of time. In this paper, we therefore introduce a generalized notion of discrete time for modeling temporal networks. Our approach also allows for considering nondeterministic time and incomplete data, two issues that are often found when analyzing datasets extracted from online social networks, for example. In order to demonstrate the consequences of our generalized notion of time, we also discuss the implications for the computation of (shortest) temporal paths in temporal networks. In addition, we implemented an R-package that provides programming support for all concepts discussed in this paper. The R-package is publicly available for download.
对离散时间的广义概念建模的时间网络
许多现实世界的网络,包括社会网络和计算机网络,都是时间网络。这意味着顶点和边会随时间变化。然而,大多数建模和分析时间网络的方法并没有明确地讨论潜在的时间概念。因此,在本文中,我们引入离散时间的广义概念来建模时间网络。我们的方法还允许考虑不确定性时间和不完整数据,这两个问题在分析在线社交网络中提取的数据集时经常发现。为了证明我们广义时间概念的结果,我们还讨论了在时间网络中计算(最短)时间路径的含义。此外,我们实现了一个r包,为本文中讨论的所有概念提供编程支持。r包可以公开下载。
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来源期刊
Network Science
Network Science SOCIAL SCIENCES, INTERDISCIPLINARY-
CiteScore
3.50
自引率
5.90%
发文量
24
期刊介绍: Network Science is an important journal for an important discipline - one using the network paradigm, focusing on actors and relational linkages, to inform research, methodology, and applications from many fields across the natural, social, engineering and informational sciences. Given growing understanding of the interconnectedness and globalization of the world, network methods are an increasingly recognized way to research aspects of modern society along with the individuals, organizations, and other actors within it. The discipline is ready for a comprehensive journal, open to papers from all relevant areas. Network Science is a defining work, shaping this discipline. The journal welcomes contributions from researchers in all areas working on network theory, methods, and data.
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