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首页> 外文期刊>Reliability Engineering & System Safety >A Gene Importance based Evolutionary Algorithm (GIEA) for identifying critical nodes in Cyber-Physical Power Systems
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A Gene Importance based Evolutionary Algorithm (GIEA) for identifying critical nodes in Cyber-Physical Power Systems

机译:基于基于基于基于的进化算法(GIEA)来识别网络 - 物理电力系统中的关键节点

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摘要

Protecting the critical nodes of a Cyber-Physical Power System (CPPS) is an effective strategy for mitigating the risk of incurring large-scale blackouts. A Gene Importance based Evolutionary Algorithm (GIEA) is proposed to identify a set of critical.. nodes by maximizing the total load loss received by end-users. GIEA adopts an importance-based evolutionary strategy to improve the algorithm's convergence and accuracy, in which the initial node importance metrics are assessed based on dynamic power flows and topology information. Both performance contribution (PC) and coupling failure impact (CFI) are considered in our importance evaluation framework. The impacts of different types of communication nodes on power networks are integrated into the proposed cascading failure model and CFI assessment. Based on the coupling and interdependence information, the strong coupling node pairs are identified to reduce the dimension of the decision vector to improve the computational efficiency of GIEA. The effectiveness and superiority of the proposed methods are illustrated through an example of a coupling CPPS consisting of the IEEE 30-bus model and a communication network with the small-world structure.
机译:保护网络物理电力系统(CPP)的临界节点是一种有效的策略,用于减轻导致大规模停电的风险。基于基于基于基于的进化算法(GIEA)以识别一组关键。节点通过最大化最终用户接收的总负载损耗。 GIEA采用基于重要的进化策略,以提高算法的收敛性和准确性,其中基于动态功率流和拓扑信息评估初始节点重要性度量。在我们的重要性评估框架中考虑了性能贡献(PC)和耦合失效影响(CFI)。不同类型的通信节点对电网的影响集成到所提出的级联故障模型和CFI评估中。基于耦合和相互依存信息,识别出强耦合节点对以减少决策载体的尺寸以提高GIEA的计算效率。通过由IEEE 30-Bus模型和具有小世界结构的通信网络组成的耦合CPP的示例来示出所提出的方法的有效性和优越性。

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