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Optimising Rolling Stock Planning including Maintenance with Constraint Programming and Quantum Annealing

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arxiv 2109.07212 v3 pith:FRVBMYB4 submitted 2021-09-15 cs.AI q-fin.ST

classification cs.AIq-fin.ST
keywords approachconstraintquantummodelannealingapproachescomputersdata
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We propose and compare Constraint Programming (CP) and Quantum Annealing (QA) approaches for rolling stock assignment optimisation considering necessary maintenance tasks. In the CP approach, we model the problem with an Alldifferent constraint, extensions of the Element constraint, and logical implications, among others. For the QA approach, we develop a quadratic unconstrained binary optimisation (QUBO) model. For evaluation, we use data sets based on real data from Deutsche Bahn and run the QA approach on real quantum computers from D-Wave. Classical computers are used to evaluate the CP approach as well as tabu search for the QUBO model. At the current development stage of the physical quantum annealers, we find that both approaches tend to produce comparable results.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. EMU circulation planning for Silesian Railways: case study and a quantum approach

    quant-ph 2025-12 conditional novelty 4.0 of 10

    Classical ILP solves daily Silesian EMU circulation for 404 trips, while the direct QUBO reformulation becomes impractical beyond roughly 78 trips.

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