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A method for validating Rent’s rule for technological and biological networks

机译:一种验证技术和生物网络租金规则的方法

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摘要

Rent’s rule is empirical power law introduced in an effort to describe and optimize the wiring complexity of computer logic graphs. It is known that brain and neuronal networks also obey Rent’s rule, which is consistent with the idea that wiring costs play a fundamental role in brain evolution and development. Here we propose a method to validate this power law for a certain range of network partitions. This method is based on the bifurcation phenomenon that appears when the network is subjected to random alterations preserving its degree distribution. It has been tested on a set of VLSI circuits and real networks, including biological and technological ones. We also analyzed the effect of different types of random alterations on the Rentian scaling in order to test the influence of the degree distribution. There are network architectures quite sensitive to these randomization procedures with significant increases in the values of the Rent exponents.
机译:Rent的规则是经验功率定律,旨在描述和优化计算机逻辑图的接线复杂性。众所周知,大脑和神经元网络也遵守Rent的规则,这与布线成本在大脑的进化和发展中起着根本性作用的观点是一致的。在这里,我们提出了一种方法来验证一定范围的网络分区的功率定律。此方法基于分叉现象,该分叉现象在网络受到随机更改以保持其度数分布时出现。它已经在包括生物和技术在内的一系列VLSI电路和真实网络上进行了测试。我们还分析了不同类型的随机变化对Rentian缩放的影响,以测试度数分布的影响。有一些网络体系结构对这些随机过程非常敏感,并且租金指数的值显着增加。

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