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Modeling and assessing interdependencies between critical infrastructures using Bayesian network: A case study of inland waterway port and surrounding supply chain network

机译:使用贝叶斯网络对关键基础设施之间的相互依赖关系进行建模和评估:内陆水路港口和周边供应链网络的案例研究

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The evolution of international supply chains have created a constant need for the transportation of goods through maritime transport. This mode of transport has been beneficial through its efficiency in the mobility of a large quantities of merchandise. In this context, inland waterway ports are one of the mainstays of the maritime transportation network. The aim of this paper is (1) to model and assess the interdependency between inland port infrastructure and its surrounding supply chain and (2) to show how the disturbance in one will have a ripple effect and trigger cascading failures in the entire network. To comprehend this interconnectedness, we outline three thorough interdependency types: geographic, service provision, and access for repair. After these interdependency types are validated, the factors related to port disruption and its supply chain performance are identified, and the Bayesian network is applied to visualize the interdependency among these factors. The quantification of interdependency is examined, and the results are profoundly analyzed through different advanced techniques such as belief propagation and sensitivity analysis. The general interpretation of these analyses entails that environmental factors and supplier responsiveness are imperative to port disruption and supply chain performance, respectively.
机译:国际供应链的发展产生了对通过海上运输货物的持续需求。这种运输方式因其在大量商品的运输中的效率而受益。在这种情况下,内陆水路港口是海上运输网络的主要支柱之一。本文的目的是(1)对内陆港口基础设施及其周围的供应链之间的相互依赖性进行建模和评估,以及(2)展示其中的干扰将如何产生连锁反应并触发整个网络的级联故障。为了理解这种相互联系,我们概述了三种彻底的相互依赖类型:地理,服务提供和维修通道。在验证了这些相互依赖性类型之后,可以确定与港口中断及其供应链绩效有关的因素,然后使用贝叶斯网络将这些因素之间的相互依赖性可视化。检查了相互依赖性的量化,并通过不同的先进技术(例如信念传播和敏感性分析)深刻地分析了结果。这些分析的一般解释要求环境因素和供应商响应能力分别对港口中断和供应链绩效至关重要。

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