English

Variance Reduction via Accelerated Dual Averaging for Finite-Sum Optimization

Optimization and Control 2021-03-09 v4 Machine Learning

Abstract

In this paper, we introduce a simplified and unified method for finite-sum convex optimization, named \emph{Variance Reduction via Accelerated Dual Averaging (VRADA)}. In both general convex and strongly convex settings, VRADA can attain an O(1n)O\big(\frac{1}{n}\big)-accurate solution in O(nloglogn)O(n\log\log n) number of stochastic gradient evaluations which improves the best-known result O(nlogn)O(n\log n), where nn is the number of samples. Meanwhile, VRADA matches the lower bound of the general convex setting up to a loglogn\log\log n factor and matches the lower bounds in both regimes nΘ(κ)n\le \Theta(\kappa) and nκn\gg \kappa of the strongly convex setting, where κ\kappa denotes the condition number. Besides improving the best-known results and matching all the above lower bounds simultaneously, VRADA has more unified and simplified algorithmic implementation and convergence analysis for both the general convex and strongly convex settings. The underlying novel approaches such as the novel initialization strategy in VRADA may be of independent interest. Through experiments on real datasets, we show the good performance of VRADA over existing methods for large-scale machine learning problems.

Keywords

Cite

@article{arxiv.2006.10281,
  title  = {Variance Reduction via Accelerated Dual Averaging for Finite-Sum Optimization},
  author = {Chaobing Song and Yong Jiang and Yi Ma},
  journal= {arXiv preprint arXiv:2006.10281},
  year   = {2021}
}

Comments

19 pages, 12 figures

R2 v1 2026-06-23T16:25:21.138Z