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A distributionally robust joint chance constrained optimization model for the dynamic network design problem under demand uncertainty

机译:需求不确定下动态网络设计问题的分布式鲁棒联合机会约束优化模型

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摘要

This paper develops a distributionally robust joint chance constrained optimization model for a dynamic network design problem (NDP) under demand uncertainty. The major contribution of this paper is to propose an approach to approximate a joint chance-constrained Cell Transmission Model (CTM) based System Optimal Dynamic Network Design Problem with only partial distributional information of uncertain demand. The proposed approximation is tighter than two popular benchmark approximations, namely the Bonferroni’s inequality and second-order cone programming (SOCP) approximations. The resultant formulation is a semidefinite program which is computationally efficient. A numerical experiment is conducted to demonstrate that the proposed approximation approach is superior to the other two approximation approaches in terms of solution quality. The proposed approximation approach may provide useful insights and have broader applicability in traffic management and traffic planning problems under uncertainty.
机译:本文针对需求不确定性下的动态网络设计问题(NDP),开发了一种分布鲁棒的联合机会约束优化模型。本文的主要贡献是提出一种仅基于不确定需求的部分分布信息来近似基于联合机会约束小区传输模型(CTM)的系统最优动态网络设计问题的方法。提议的近似值比两个流行的基准近似值(即Bonferroni不等式和二阶锥规划(SOCP)近似)更严格。所得公式是计算效率高的半定程序。进行了数值实验,证明了所提出的近似方法在解决方案质量方面优于其他两种近似方法。所提出的近似方法可以提供有用的见解,并在不确定性下在交通管理和交通规划问题中具有更广泛的适用性。

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