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基于网络功能的复杂网络社区定义。

A network function-based definition of communities in complex networks.

机构信息

Institute for Research in Electronics and Applied Physics, University of Maryland, College Park, Maryland 20742, USA.

出版信息

Chaos. 2012 Sep;22(3):033129. doi: 10.1063/1.4745854.

Abstract

We consider an alternate definition of community structure that is functionally motivated. We define network community structure based on the function the network system is intended to perform. In particular, as a specific example of this approach, we consider communities whose function is enhanced by the ability to synchronize and/or by resilience to node failures. Previous work has shown that, in many cases, the largest eigenvalue of the network's adjacency matrix controls the onset of both synchronization and percolation processes. Thus, for networks whose functional performance is dependent on these processes, we propose a method that divides a given network into communities based on maximizing a function of the largest eigenvalues of the adjacency matrices of the resulting communities. We also explore the differences between the partitions obtained by our method and the modularity approach (which is based solely on consideration of network structure). We do this for several different classes of networks. We find that, in many cases, modularity-based partitions do almost as well as our function-based method in finding functional communities, even though modularity does not specifically incorporate consideration of function.

摘要

我们考虑了一种基于功能的社区结构的替代定义。我们根据网络系统所要执行的功能来定义网络社区结构。具体来说,作为这种方法的一个具体例子,我们考虑了那些通过同步能力和/或对节点故障的弹性来增强其功能的社区。以前的工作表明,在许多情况下,网络邻接矩阵的最大特征值控制着同步和渗流过程的开始。因此,对于那些功能性能依赖于这些过程的网络,我们提出了一种基于最大化邻接矩阵最大特征值的函数将给定网络划分为社区的方法。我们还探讨了我们的方法和基于模块性的方法(仅基于网络结构的考虑)得到的划分之间的差异。我们对几类不同的网络进行了研究。我们发现,在许多情况下,基于模块性的划分在寻找功能社区方面几乎与我们基于功能的方法一样有效,尽管模块性并没有特别纳入对功能的考虑。

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