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Accelerating Feedback-based Algorithms for Quantum Optimization Using Gradient Descent

Quantum Physics 2026-02-16 v1 Machine Learning

Abstract

Feedback-based methods have gained significant attention as an alternative training paradigm for the Quantum Approximate Optimization Algorithm (QAOA) in solving combinatorial optimization problems such as MAX-CUT. In particular, Quantum Lyapunov Control (QLC) employs feedback-driven control laws that guarantee monotonic non-decreasing objective values, can substantially reduce the training overhead of QAOA, and mitigate barren plateaus. However, these methods might require long control sequences, leading to sub-optimal convergence rates. In this work, we propose a hybrid method that incorporates per-layer gradient estimation to accelerate the convergence of QLC while preserving its low training overhead and stability guarantees. By leveraging layer-wise gradient information, the proposed approach selects near-optimal control parameters, resulting in significantly faster convergence and improved robustness. We validate the effectiveness of the method through extensive numerical experiments across a range of problem instances and optimization settings.

Keywords

Cite

@article{arxiv.2602.12387,
  title  = {Accelerating Feedback-based Algorithms for Quantum Optimization Using Gradient Descent},
  author = {Masih Mozakka and Mohsen Heidari},
  journal= {arXiv preprint arXiv:2602.12387},
  year   = {2026}
}

Comments

10 pages, 6 figures