English

Scalable Robust Matrix Recovery: Frank-Wolfe Meets Proximal Methods

Optimization and Control 2017-05-31 v2 Computer Vision and Pattern Recognition Numerical Analysis Machine Learning

Abstract

Recovering matrices from compressive and grossly corrupted observations is a fundamental problem in robust statistics, with rich applications in computer vision and machine learning. In theory, under certain conditions, this problem can be solved in polynomial time via a natural convex relaxation, known as Compressive Principal Component Pursuit (CPCP). However, all existing provable algorithms for CPCP suffer from superlinear per-iteration cost, which severely limits their applicability to large scale problems. In this paper, we propose provable, scalable and efficient methods to solve CPCP with (essentially) linear per-iteration cost. Our method combines classical ideas from Frank-Wolfe and proximal methods. In each iteration, we mainly exploit Frank-Wolfe to update the low-rank component with rank-one SVD and exploit the proximal step for the sparse term. Convergence results and implementation details are also discussed. We demonstrate the scalability of the proposed approach with promising numerical experiments on visual data.

Keywords

Cite

@article{arxiv.1403.7588,
  title  = {Scalable Robust Matrix Recovery: Frank-Wolfe Meets Proximal Methods},
  author = {Cun Mu and Yuqian Zhang and John Wright and Donald Goldfarb},
  journal= {arXiv preprint arXiv:1403.7588},
  year   = {2017}
}
R2 v1 2026-06-22T03:37:51.976Z