Imitation-Regularized Optimal Transport on Networks: Provable Robustness and Application to Logistics Planning

IF 2.4 Q2 AUTOMATION & CONTROL SYSTEMS
Koshi Oishi;Yota Hashizume;Tomohiko Jimbo;Hirotaka Kaji;Kenji Kashima
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Abstract

Transport systems on networks are crucial in various applications, but face a significant risk of being adversely affected by unforeseen circumstances such as disasters. The application of entropy-regularized optimal transport (OT) on graph structures has been investigated to enhance the robustness of transport on such networks. In this letter, we propose an imitation-regularized OT (I-OT) that mathematically incorporates prior knowledge into the robustness of OT. This method is expected to enhance interpretability by integrating human insights into robustness and to accelerate practical applications. Furthermore, we mathematically verify the robustness of I-OT and discuss how these robustness properties relate to real-world applications. The effectiveness of this method is validated through a logistics simulation using automotive parts data.
网络上的模仿-规则化最优运输:可证明鲁棒性及在物流规划中的应用
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来源期刊
IEEE Control Systems Letters
IEEE Control Systems Letters Mathematics-Control and Optimization
CiteScore
4.40
自引率
13.30%
发文量
471
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