DocumentCode
1755261
Title
On the Linear Convergence of the ADMM in Decentralized Consensus Optimization
Author
Wei Shi ; Qing Ling ; Kun Yuan ; Gang Wu ; Wotao Yin
Author_Institution
Dept. of Autom., Univ. of Sci. & Technol. of China, Hefei, China
Volume
62
Issue
7
fYear
2014
fDate
41730
Firstpage
1750
Lastpage
1761
Abstract
In decentralized consensus optimization, a connected network of agents collaboratively minimize the sum of their local objective functions over a common decision variable, where their information exchange is restricted between the neighbors. To this end, one can first obtain a problem reformulation and then apply the alternating direction method of multipliers (ADMM). The method applies iterative computation at the individual agents and information exchange between the neighbors. This approach has been observed to converge quickly and deemed powerful. This paper establishes its linear convergence rate for the decentralized consensus optimization problem with strongly convex local objective functions. The theoretical convergence rate is explicitly given in terms of the network topology, the properties of local objective functions, and the algorithm parameter. This result is not only a performance guarantee but also a guideline toward accelerating the ADMM convergence.
Keywords
convergence; convex programming; iterative methods; multi-agent systems; ADMM convergence; alternating direction method of multipliers; common decision variable; convex local objective functions; decentralized consensus optimization; information exchange; iterative computation method; linear convergence; theoretical convergence rate; Convergence; Convex functions; Information exchange; Linear programming; Optimization; Signal processing algorithms; Vectors; Decentralized consensus optimization; alter nating direction method of multipliers (ADMM); linear convergence;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/TSP.2014.2304432
Filename
6731604
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