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Authors: Sebastian Ammon 1 ; Frank Phillipson 1 ; 2 and Rui Almeida 1

Affiliations: 1 School of Business and Economic, Maastricht University, Maastricht, The Netherlands ; 2 TNO, The Hague, The Netherlands

Keyword(s): Supervised Machine Learning, Vehicle Routing Problem, Graph Convolutional Network, Optimisation.

Abstract: This paper expands on previous machine learning techniques applied to combinatorial optimisation problems, to approximately solve the capacitated vehicle routing problem (VRP). We leverage the versatility of graph neural networks (GNNs) and extend the application of graph convolutional neural networks, previously used for the Travelling Salesman Problem, to address the VRP. Our model employs a supervised learning technique, utilising solved instances from the OR-Tools solver for training. It learns to provide probabilistic representations of the VRP, generating final VRP tours via non-autoregressive decoding with beam search. This work shows that despite that reinforcement learning based autoregressive approaches have better performance, GNNs show great promise to solve complex optimisation problems, providing a valuable foundation for further refinement and study.

CC BY-NC-ND 4.0

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Paper citation in several formats:
Ammon, S.; Phillipson, F. and Almeida, R. (2024). A Supervised Machine Learning Approach for the Vehicle Routing Problem. In Proceedings of the 13th International Conference on Operations Research and Enterprise Systems - ICORES; ISBN 978-989-758-681-1; ISSN 2184-4372, SciTePress, pages 364-371. DOI: 10.5220/0012430000003639

@conference{icores24,
author={Sebastian Ammon. and Frank Phillipson. and Rui Almeida.},
title={A Supervised Machine Learning Approach for the Vehicle Routing Problem},
booktitle={Proceedings of the 13th International Conference on Operations Research and Enterprise Systems - ICORES},
year={2024},
pages={364-371},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0012430000003639},
isbn={978-989-758-681-1},
issn={2184-4372},
}

TY - CONF

JO - Proceedings of the 13th International Conference on Operations Research and Enterprise Systems - ICORES
TI - A Supervised Machine Learning Approach for the Vehicle Routing Problem
SN - 978-989-758-681-1
IS - 2184-4372
AU - Ammon, S.
AU - Phillipson, F.
AU - Almeida, R.
PY - 2024
SP - 364
EP - 371
DO - 10.5220/0012430000003639
PB - SciTePress