级联故障
稳健性(进化)
计算机科学
相互依存的网络
分布式计算
社会联系
相互依存
供应链
计算机网络
可靠性工程
复杂网络
工程类
法学
功率(物理)
化学
心理治疗师
心理学
万维网
物理
基因
电力系统
量子力学
生物化学
政治学
作者
Xiaoqiu Shi,Wei Long,Yanyan Li,Dingshan Deng
标识
DOI:10.1016/j.physa.2021.126518
摘要
A supply chain system can be considered as an interdependent supply chain network (ISCN) which consists of an undirected cyber-network and a directed physical-network. To survive against disruptions, an ISCN needs to maintain operations and connectedness, referred to as robustness. Studies on the robustness of ISCNs when considering both functional and structural cascading failures are still scarce. In this paper, we first propose a cascading failure model which considers these two cascading failures simultaneously. We also present a model to generate ISCNs with different network types and interconnecting patterns. Using the transition threshold based on the proposed all-type connected sub-network, we can evaluate the robustness of ISCNs more properly. We then conduct numerical simulations to investigate how some parameters (e.g., network type, interconnecting pattern, the distribution of different types of nodes, etc.) affect the robustness of ISCNs under random and targeted disruptions. The results mainly show that the robustness of ISCNs can be affected seriously by different network types, interconnecting patterns, and disruption types; and the distribution of different types of nodes is more uniform, the corresponding ISCN is more robust, no matter what the disruption type is. Our results may provide help for building robust ISCNs. • We proposed a model to generate ISCNs with different network types and interconnecting patterns. • We proposed a concept of sub-network called all-type connected sub-network. • We construct a cascading failure model considering both functional and structural cascading failures. • The distribution of different types of nodes is more uniform, the corresponding ISCN is more robust.
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