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Model predictive quantum control: A modular approach for efficient and robust quantum optimal control

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abstract

Model predictive control (MPC) is one of the most successful modern control methods. It relies on repeatedly solving a finite-horizon optimal control problem and applying the beginning piece of the optimal input. In this paper, we develop a modular framework for improving efficiency and robustness of quantum optimal control (QOC) via MPC. We first provide a tutorial introduction to basic concepts of MPC from a QOC perspective. We then present multiple MPC schemes, ranging from simple approaches to more sophisticated schemes which admit stability guarantees. This yields a modular framework which can be used 1) to improve efficiency of open-loop QOC and 2) to improve robustness of closed-loop quantum control by incorporating feedback. We demonstrate these benefits with numerical results, where we benchmark the proposed methods against competing approaches.

fields

quant-ph 1

years

2026 1

verdicts

CONDITIONAL 1

representative citing papers

A Model Predictive Control-Inspired Quantum Algorithm

quant-ph · 2026-07-27 · conditional · novelty 7.0

A model-predictive-control-inspired hybrid algorithm optimizes quantum circuit layers over a receding horizon and is proven to at least match FALQON while sometimes outperforming it in practice.

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  • A Model Predictive Control-Inspired Quantum Algorithm quant-ph · 2026-07-27 · conditional · none · ref 33 · internal anchor

    A model-predictive-control-inspired hybrid algorithm optimizes quantum circuit layers over a receding horizon and is proven to at least match FALQON while sometimes outperforming it in practice.