JOURNAL ARTICLE

A Semismooth Newton Stochastic Proximal Point Algorithm with Variance Reduction

Andre MilzarekFabian SchaippMichael Ulbrich

Year: 2024 Journal:   SIAM Journal on Optimization Vol: 34 (1)Pages: 1157-1185   Publisher: Society for Industrial and Applied Mathematics

Abstract

We develop an implementable stochastic proximal point (SPP) method for a class of weakly convex, composite optimization problems.The proposed stochastic proximal point algorithm incorporates a variance reduction mechanism and the resulting SPP updates are solved using an inexact semismooth Newton framework.We establish detailed convergence results that take the inexactness of the SPP steps into account and that are in accordance with existing convergence guarantees of (proximal) stochastic variance-reduced gradient methods.Numerical experiments show that the proposed algorithm competes favorably with other state-of-the-art methods and achieves higher robustness with respect to the step size selection.

Keywords:
Mathematics Variance reduction Reduction (mathematics) Algorithm Variance (accounting) Point (geometry) Mathematical optimization Newton's method Applied mathematics Statistics Nonlinear system Geometry

Metrics

2
Cited By
2.63
FWCI (Field Weighted Citation Impact)
50
Refs
0.79
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Optimization Algorithms Research
Physical Sciences →  Mathematics →  Numerical Analysis
Optimization and Variational Analysis
Physical Sciences →  Computer Science →  Computational Theory and Mathematics
Risk and Portfolio Optimization
Social Sciences →  Decision Sciences →  Management Science and Operations Research

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