English

The Primal-Dual Hybrid Gradient Method for Semiconvex Splittings

Numerical Analysis 2014-07-08 v1 Computer Vision and Pattern Recognition Numerical Analysis Optimization and Control

Abstract

This paper deals with the analysis of a recent reformulation of the primal-dual hybrid gradient method [Zhu and Chan 2008, Pock, Cremers, Bischof and Chambolle 2009, Esser, Zhang and Chan 2010, Chambolle and Pock 2011], which allows to apply it to nonconvex regularizers as first proposed for truncated quadratic penalization in [Strekalovskiy and Cremers 2014]. Particularly, it investigates variational problems for which the energy to be minimized can be written as G(u)+F(Ku)G(u) + F(Ku), where GG is convex, FF semiconvex, and KK is a linear operator. We study the method and prove convergence in the case where the nonconvexity of FF is compensated by the strong convexity of the GG. The convergence proof yields an interesting requirement for the choice of algorithm parameters, which we show to not only be sufficient, but necessary. Additionally, we show boundedness of the iterates under much weaker conditions. Finally, we demonstrate effectiveness and convergence of the algorithm beyond the theoretical guarantees in several numerical experiments.

Keywords

Cite

@article{arxiv.1407.1723,
  title  = {The Primal-Dual Hybrid Gradient Method for Semiconvex Splittings},
  author = {Thomas Möllenhoff and Evgeny Strekalovskiy and Michael Moeller and Daniel Cremers},
  journal= {arXiv preprint arXiv:1407.1723},
  year   = {2014}
}
R2 v1 2026-06-22T04:57:03.777Z