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Critical nodes identification for vulnerability analysis of power communication networks

机译:电力通信网络脆弱性分析的关键节点识别

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摘要

As the support networks of the electric power grid, power communication networks (PCNs) become more complex and vulnerable due to the increasing scale of the electric power grid. Identifying and protecting the critical nodes in PCNs in advance is an effective way to reduce network vulnerability. Owing to the large differences in vulnerability indicators of different layers in the PCN, it is difficult to find the critical nodes, which have great impacts on all vulnerability indicators. Therefore, the goal of this study is to identify the critical nodes that have greater impacts on different layers, rather than nodes that have the greatest impact on a single layer. Therefore, the authors present a model to analyse the node in the PCNs from the physical topology, traffic distribution, and service importance distribution to calculate the node importance in the physical topology layer, the transport layer, and the service layer, respectively. Combined with a multi-layer critical nodes identification algorithm (MCNIA) proposed, the node critical degree is obtained so that it can identify the critical nodes in the PCNs. The vulnerability analyses of PCNs under critical nodes attacking prove that MCNIA can identify critical nodes in the PCNs precisely.
机译:作为电网的支持网络,由于电网规模的扩大,电力通信网络(PCN)变得更加复杂和脆弱。预先识别和保护PCN中的关键节点是减少网络漏洞的有效方法。由于PCN中不同层的漏洞指标差异很大,因此很难找到对所有漏洞指标都具有重大影响的关键节点。因此,本研究的目的是确定对不同层影响更大的关键节点,而不是对单个层影响最大的节点。因此,作者提出了一个模型,用于根据物理拓扑,流量分布和服务重要性分布来分析PCN中的节点,以分别计算物理拓扑层,传输层和服务层中的节点重要性。结合提出的多层关键节点识别算法(MCNIA),获得了节点关键度,从而可以识别PCN中的关键节点。关键节点攻击下PCN的漏洞分析证明,MCNIA可以准确识别PCN中的关键节点。

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