Distributed Nonconvex Optimization with Exponential Convergence Rate via Hybrid Systems Methods

Fuente: arXiv
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Main Authors: Hendrickson, Katherine R., Hustig-Schultz, Dawn M., Hale, Matthew T., Sanfelice, Ricardo G.
Format: Preprint
Published: 2025
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author Hendrickson, Katherine R.
Hustig-Schultz, Dawn M.
Hale, Matthew T.
Sanfelice, Ricardo G.
author_facet Hendrickson, Katherine R.
Hustig-Schultz, Dawn M.
Hale, Matthew T.
Sanfelice, Ricardo G.
contents We present a hybrid systems framework for distributed multi-agent optimization in which agents execute computations in continuous time and communicate in discrete time. The optimization algorithm is analogous to a continuous-time form of parallelized coordinate descent. Agents implement an update-and-hold strategy in which gradients are computed at communication times and held constant during flows between communications. The completeness of solutions under these hybrid dynamics is established. Then, we prove that this system is globally exponentially stable to a minimizer of a possibly nonconvex, smooth objective function that satisfies the Polyak-Lojasiewicz (PL) condition. Simulation results are presented for three different applications and illustrate the convergence rates and the impact of initial conditions upon convergence.
format Preprint
id arxiv_https___arxiv_org_abs_2502_02597
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Distributed Nonconvex Optimization with Exponential Convergence Rate via Hybrid Systems Methods
Hendrickson, Katherine R.
Hustig-Schultz, Dawn M.
Hale, Matthew T.
Sanfelice, Ricardo G.
Optimization and Control
We present a hybrid systems framework for distributed multi-agent optimization in which agents execute computations in continuous time and communicate in discrete time. The optimization algorithm is analogous to a continuous-time form of parallelized coordinate descent. Agents implement an update-and-hold strategy in which gradients are computed at communication times and held constant during flows between communications. The completeness of solutions under these hybrid dynamics is established. Then, we prove that this system is globally exponentially stable to a minimizer of a possibly nonconvex, smooth objective function that satisfies the Polyak-Lojasiewicz (PL) condition. Simulation results are presented for three different applications and illustrate the convergence rates and the impact of initial conditions upon convergence.
title Distributed Nonconvex Optimization with Exponential Convergence Rate via Hybrid Systems Methods
topic Optimization and Control
url https://arxiv.org/abs/2502.02597