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Linear analysis of degree correlations in complex networks

机译:复杂网络中度相关的线性分析

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Many real-world networks such as the proteina€“protein interaction networks and metabolic networks often display nontrivial correlations between degrees of vertices connected by edges. Here, we analyse the statistical methods used usually to describe the degree correlation in the networks, and analytically give linear relation in the degree correlation. It provides a simple and interesting perspective on the analysis of the degree correlation in networks, which is usefully complementary to the existing methods for degree correlation in networks. Especially, the slope in the linear relation corresponds exactly to the degree correlation coefficient in networks, meaning that it can not only characterize the level of degree correlation in networks, but also reflects the speed that the average nearest neighboursa€? degree varies with the vertex degree. Finally, we applied our results to several real-world networks, validating the conclusions of the linear analysis of degree correlation. We hope that the work in this paper can be helpful for further understanding the degree correlation in complex networks.
机译:许多现实世界中的网络,例如蛋白质,蛋白质相互作用网络和代谢网络,通常在边缘连接的顶点之间显示出不平凡的相关性。在这里,我们分析通常用于描述网络中度相关性的统计方法,并分析给出度相关性中的线性关系。它为分析网络中的度数相关性提供了一个简单而有趣的观点,对现有的网络中度数相关性方法提供了有益的补充。特别是,线性关系中的斜率与网络中的度数相关系数完全对应,这意味着它不仅可以表征网络中的度数相关程度,还可以反映平均最近邻的速度。度随顶点度而变化。最后,我们将我们的结果应用于多个实际网络,验证了度相关性线性分析的结论。我们希望本文的工作对进一步理解复杂网络中的度相关性有帮助。

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