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Understanding the Structure of Power Law Networks

机译:了解权力法网络的结构

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The degree distribution of scale-free networks follow power laws. There continues to be disagreement, however, as to what additional properties these networks share. A wide range of techniques useful as aids in understanding common structure as well as in differentiating between elements of this class of networks are explored. First, the utility of a polar coordinate plot for power law distributions is explained. Second, computational experience with two procedures to uncover shortest paths in scale-free networks based solely on locally available data is provided. Next, a tabu search is developed to find high quality solutions for two bi-objective models. For specific objective weights, networks whose degree distributions follow a power law are shown to arise. Lastly, links between the clustering coefficient distribution and modularity are described. Computational experiments supporting the connection between the first nontrivial eigenvalue of a Laplacian matrix and network synchrony are conducted.
机译:无规模网络的程度分布遵循权力法。然而,对于这些网络共享的附加属性,继续分歧。探讨了在理解共同结构以及在这类网络的要素之间进行辅助有助于辅助技术。首先,解释了电力法分布的极性坐标图的效用。其次,提供了两种过程的计算经验,以仅基于本地可用数据揭示无规模网络中的最短路径。接下来,开发了禁忌搜索,以找到两个双目标型号的高质量解决方案。对于特定的客观权重,显示了遵循权力法的网络遵循的网络。最后,描述了聚类系数分布和模块化之间的链接。对支持拉普拉斯矩阵和网络同步的第一非活动特征值之间的连接进行计算实验。

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