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Sep, 2015
大规模优化的异步分布式ADMM算法与收敛分析-第一部分
Asynchronous Distributed ADMM for Large-Scale Optimization- Part I: Algorithm and Convergence Analysis
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Tsung-Hui Chang, Mingyi Hong, Wei-Cheng Liao, Xiangfeng Wang
TL;DR
本文研究了基于ADMM的分布式优化方法,提出了一种异步ADMM算法,可以有效提高分布式计算的时间效率,同时通过对算法参数的适当选择,可以保证算法收敛到Karush-Kuhn-Tucker(KKT)点集。
Abstract
Aiming at solving large-scale learning problems, this paper studies
distributed optimization
methods based on the alternating direction method of multipliers (
admm
). By formulating the learning problem as a conse
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