A One-Sample Decentralized Proximal Algorithm for Non-Convex Stochastic Composite Optimization

被引:0
|
作者
Xiao, Tesi [1 ]
Chen, Xuxing [2 ]
Balasubramanian, Krishnakumar [1 ]
Ghadimi, Saeed [3 ]
机构
[1] Univ Calif, Dept Stat, Davis, CA 95616 USA
[2] Univ Calif, Dept Math, Davis, CA USA
[3] Univ Waterloo, Dept Management Sci, Waterloo, ON, Canada
来源
UNCERTAINTY IN ARTIFICIAL INTELLIGENCE | 2023年 / 216卷
基金
加拿大自然科学与工程研究理事会;
关键词
DISTRIBUTED OPTIMIZATION; CONVERGENCE; CONSENSUS;
D O I
暂无
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
We focus on decentralized stochastic non-convex optimization, where n agents work together to optimize a composite objective function which is a sum of a smooth term and a non-smooth convex term. To solve this problem, we propose two single-time scale algorithms: Prox-DASA and Prox-DASA-GT. These algorithms can find epsilon-stationary points in O(n(-1)epsilon(-2)) iterations using constant batch sizes (i.e., O(1)). Unlike prior work, our algorithms achieve a comparable complexity result without requiring large batch sizes, more complex per-iteration operations (such as double loops), or stronger assumptions. Our theoretical findings are supported by extensive numerical experiments, which demonstrate the superiority of our algorithms over previous approaches. Our code is available at https://github.com/xuxingc/ProxDASA.
引用
收藏
页码:2324 / 2334
页数:11
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