需求不确定性下系统最优动态交通分配的鲁棒优化方法

C. Lu
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引用次数: 3

摘要

本文研究了具有不确定需求的基于路径的系统最优动态交通分配(SODTA)问题。采用鲁棒优化方法来解决这一问题。目标是在预先确定的需求不确定性集定义的最坏情况下最小化总网络运行时间。我们提出了一般不确定性集的稳健SODTA对偶优化问题,并证明了对于某些特定类型的不确定性集,求解稳健SODTA问题并不比求解确定性SODTA问题困难。此外,提出了一种基于列生成的嵌入缩放梯度投影算法的算法框架来解决SODTA问题。通过数值实验验证了该算法的有效性,并考察了不同类型的需求不确定性集对求解质量的影响。
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Robust optimization approach for system optimal dynamic traffic assignment with demand uncertainty
This research deals with the path-based system optimal dynamic traffic assignment (SODTA) problem with uncertain demands that are assumed to be bounded by a prescribed uncertainty set. A robust optimization approach is adopted to address this problem. The objective is to minimize the total network travel time under the worst-case scenario defined by a pre-determined demand uncertainty set. We formulate the robust counterpart optimization problem of SODTA for a general uncertainty set and show that solving the robust SODTA problem is not more difficult than solving the deterministic SODTA problem for some specific types of uncertainty set. Moreover, a column generation-based algorithmic framework that embeds a scaled gradient projection algorithm is proposed to solve the SODTA problem. Numerical experiments were conducted to demonstrate the effectiveness of the algorithm and to examine the impact of different types of demand uncertainty set on solution quality.
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