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arXiv AI

[2408.15969] Stability of Primal-Dual Gradient Flow Dynamics for Multi-Block Convex Optimization Problems

Advanced AI EditorBy Advanced AI EditorJune 30, 2025No Comments2 Mins Read
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[Submitted on 28 Aug 2024 (v1), last revised 27 Jun 2025 (this version, v2)]

View a PDF of the paper titled Stability of Primal-Dual Gradient Flow Dynamics for Multi-Block Convex Optimization Problems, by Ibrahim K. Ozaslan and 2 other authors

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Abstract:We examine stability properties of primal-dual gradient flow dynamics for composite convex optimization problems with multiple, possibly nonsmooth, terms in the objective function under the generalized consensus constraint. The proposed dynamics are based on the proximal augmented Lagrangian and they provide a viable alternative to ADMM which faces significant challenges from both analysis and implementation viewpoints in large-scale multi-block scenarios. In contrast to customized algorithms with individualized convergence guarantees, we develop a systematic approach for solving a broad class of challenging composite optimization problems. We leverage various structural properties to establish global (exponential) convergence guarantees for the proposed dynamics. Our assumptions are much weaker than those required to prove (exponential) stability of primal-dual dynamics as well as (linear) convergence of discrete-time methods such as standard two-block and multi-block ADMM and EXTRA algorithms. Finally, we show necessity of some of our structural assumptions for exponential stability and provide computational experiments to demonstrate the convenience of the proposed approach for parallel and distributed computing applications.

Submission history

From: Mihailo Jovanovic [view email]
[v1]
Wed, 28 Aug 2024 17:43:18 UTC (750 KB)
[v2]
Fri, 27 Jun 2025 04:25:57 UTC (317 KB)



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