Variational models of robust optimal transport

Fuente: arXiv
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Main Authors: De Masi, Luigi, Marchese, Andrea, Massaccesi, Annalisa
Format: Preprint
Published: 2025
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author De Masi, Luigi
Marchese, Andrea
Massaccesi, Annalisa
author_facet De Masi, Luigi
Marchese, Andrea
Massaccesi, Annalisa
contents This paper introduces two variational formulations for a model of robust optimal transport, that is, the problem of designing optimal transport networks that are resilient to potential damages, balancing construction costs against the benefit of maintaining partial functionality when parts of the network are damaged. We propose a Eulerian formulation, where the network is modeled by a rectifiable measure and recovery plans are represented by 1-dimensional normal currents. This framework allows for changes in the direction of the transportation in response to damages but restricts damages to be characteristic functions of closed sets. We also propose a Lagrangian formulation, where the network is a traffic plan (that is, a measure on the space of Lipschitz curves) and recovery plans are sub-traffic plans. This approach prescribes the network's orientation but allows for a wider class of damages. We prove existence of minimizers in both settings. The two models are compared through examples that illustrate their main differences: the Eulerian formulation's necessity for an unoriented network to achieve existence, the Lagrangian formulation's ability to handle general damages and its requirement for a positive distance between the supports of the source and target measures.
format Preprint
id arxiv_https___arxiv_org_abs_2511_05146
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Variational models of robust optimal transport
De Masi, Luigi
Marchese, Andrea
Massaccesi, Annalisa
Analysis of PDEs
Optimization and Control
49Q10, 49Q20, 49Q22, 90B06
This paper introduces two variational formulations for a model of robust optimal transport, that is, the problem of designing optimal transport networks that are resilient to potential damages, balancing construction costs against the benefit of maintaining partial functionality when parts of the network are damaged. We propose a Eulerian formulation, where the network is modeled by a rectifiable measure and recovery plans are represented by 1-dimensional normal currents. This framework allows for changes in the direction of the transportation in response to damages but restricts damages to be characteristic functions of closed sets. We also propose a Lagrangian formulation, where the network is a traffic plan (that is, a measure on the space of Lipschitz curves) and recovery plans are sub-traffic plans. This approach prescribes the network's orientation but allows for a wider class of damages. We prove existence of minimizers in both settings. The two models are compared through examples that illustrate their main differences: the Eulerian formulation's necessity for an unoriented network to achieve existence, the Lagrangian formulation's ability to handle general damages and its requirement for a positive distance between the supports of the source and target measures.
title Variational models of robust optimal transport
topic Analysis of PDEs
Optimization and Control
49Q10, 49Q20, 49Q22, 90B06
url https://arxiv.org/abs/2511.05146