Proves convergence to saddle points and o(1/t²) gap rates for continuous-time dynamics with α/t damping (α≥3) and for a structure-preserving discretization under a t_k sequence condition with ρ≤1.
Convergence of iterates and improved rates for accelerated augmented Lagrangian methods for linearly constrained convex optimization
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abstract
Motivated by an inertial primal-dual dynamical system with vanishing damping, we propose a class of accelerated augmented Lagrangian methods with Nesterov extrapolation parameters for a linearly constrained convex optimization problem with a differentiable objective function. The framework contains two variants: an implicit-gradient scheme for convex continuously differentiable objectives and a partially explicit scheme for convex smooth objectives. Under suitable parameter conditions, we prove convergence of the primal-dual sequence to a primal-dual solution, together with accelerated estimates for the augmented Lagrangian gap, the feasibility violation, and the objective residual. In the noncritical parameter regime, these estimates are improved from $\mathcal{O}(1/k^2)$ to $o(1/k^2)$. Numerical experiments are also presented to illustrate the theoretical results. To the best of our knowledge, neither $o(1/k^2)$ rates for both feasibility violation and objective residual nor convergence of iterates under the critical parameter condition have been previously established for accelerated augmented Lagrangian-type methods in this setting.
fields
math.OC 1years
2026 1verdicts
UNVERDICTED 1representative citing papers
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Fast primal-dual methods for convex-concave bilinear saddle point problems: continuous-time dynamics and discrete algorithms
Proves convergence to saddle points and o(1/t²) gap rates for continuous-time dynamics with α/t damping (α≥3) and for a structure-preserving discretization under a t_k sequence condition with ρ≤1.