Resilience Analysis of Multi-modal Logistics Service Network Through Robust Optimization with Budget-of-Uncertainty

Yaxin PangCGS i3, Shenle PanCGS i3, Eric BallotCGS i3
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Abstract

Supply chain resilience analysis aims to identify the critical elements in the supply chain, measure its reliability, and analyze solutions for improving vulnerabilities. While extensive methods like stochastic approaches have been dominant, robust optimization-widely applied in robust planning under uncertainties without specific probability distributions-remains relatively underexplored for this research problem. This paper employs robust optimization with budget-of-uncertainty as a tool to analyze the resilience of multi-modal logistics service networks under time uncertainty. We examine the interactive effects of three critical factors: network size, disruption scale, disruption degree. The computational experiments offer valuable managerial insights for practitioners and researchers.
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通过不确定性预算进行稳健优化的多模式物流服务网络弹性分析
供应链复原力分析旨在确定供应链中的关键要素,衡量其可靠性,并分析改善脆弱性的解决方案。虽然随机方法等广泛方法一直占主导地位,但稳健优化--广泛应用于无特定概率分布的不确定性条件下的稳健规划--在这一研究问题上仍相对缺乏探索。本文采用具有不确定性预算的稳健优化作为工具,分析时间不确定性下多模式物流服务网络的弹性。我们研究了三个关键因素的交互影响:网络规模、中断规模和中断度。计算实验为实践者和研究人员提供了宝贵的管理见解。
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