Decentralized Convex Finite-Sum Optimization with Better Dependence on Condition Numbers
Yuxing Liu, Lesi Chen, Luo Luo
摘要
This paper studies decentralized optimization problem, where the local objective on each node is an average of a finite set of convex functions and the global function is strongly convex. We propose an efficient stochastic variance reduced first-order method that allows the different nodes to establish their stochastic local gradient estimator with different mini-batch sizes per iteration. We prove the upper bound on the computation time of the proposed method contains the dependence on the global condition number, which is sharper than the previous results that only depend on the local condition numbers. Compared with the state-of-the-art methods, we also show that our method requires less local incremental firstorder oracle calls and comparable communication cost. We further perform numerical experiments to validate the advantage of our method.
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引用它的顶会 Paper2
- A Near-Optimal Algorithm for Decentralized Convex-Concave Finite-Sum Minimax OptimizationHongxu Chen, Ke Wei, Haishan Ye, Luo LuoNeurIPS 2025 · 被引用 2 次
- Decentralized Stochastic Nonconvex Optimization under the (L0, L1)-SmoothnessLuo Luo, Xue Cui, Tingkai Jia, Cheng ChenKDD 2026
它引用的顶会 Paper2
- Optimal and Practical Algorithms for Smooth and Strongly Convex Decentralized OptimizationDmitry Kovalev, Adil Salim, Peter RichtárikNeurIPS 2020 · 被引用 111 次
- Dual-Free Stochastic Decentralized Optimization with Variance ReductionHadrien Hendrikx, Francis R. Bach, Laurent MassouliéNeurIPS 2020 · 被引用 29 次
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