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Classical and Quantum Speedups for Non-Convex Optimization via Energy Conserving Descent

Quantum Physics 2026-04-15 v1 Machine Learning Optimization and Control Machine Learning

Abstract

The Energy Conserving Descent (ECD) algorithm was recently proposed (De Luca & Silverstein, 2022) as a global non-convex optimization method. Unlike gradient descent, appropriately configured ECD dynamics escape strict local minima and converge to a global minimum, making it appealing for machine learning optimization. We present the first analytical study of ECD, focusing on the one-dimensional setting for this first installment. We formalize a stochastic ECD dynamics (sECD) with energy-preserving noise, as well as a quantum analog of the ECD Hamiltonian (qECD), providing the foundation for a quantum algorithm through Hamiltonian simulation. For positive double-well objectives, we compute the expected hitting time from a local to the global minimum. We prove that both sECD and qECD yield exponential speedup over respective gradient descent baselines--stochastic gradient descent and its quantization. For objectives with tall barriers, qECD achieves a further speedup over sECD.

Keywords

Cite

@article{arxiv.2604.13022,
  title  = {Classical and Quantum Speedups for Non-Convex Optimization via Energy Conserving Descent},
  author = {Yihang Sun and Huaijin Wang and Patrick Hayden and Jose Blanchet},
  journal= {arXiv preprint arXiv:2604.13022},
  year   = {2026}
}

Comments

33 pages, 2 figures

R2 v1 2026-07-01T12:09:19.443Z