JOURNAL ARTICLE

Distributed Optimization Over Time-Varying Directed Graphs

Angelia NedićAlex Olshevsky

Year: 2014 Journal:   IEEE Transactions on Automatic Control Vol: 60 (3)Pages: 601-615   Publisher: Institute of Electrical and Electronics Engineers

Abstract

We consider distributed optimization by a collection of nodes, each having access to its own convex function, whose collective goal is to minimize the sum of the functions. The communications between nodes are described by a time-varying sequence of directed graphs, which is uniformly strongly connected. For such communications, assuming that every node knows its out-degree, we develop a broadcast-based algorithm, termed the subgradient-push, which steers every node to an optimal value under a standard assumption of subgradient boundedness. The subgradient-push requires no knowledge of either the number of agents or the graph sequence to implement. Our analysis shows that the subgradient-push algorithm converges at a rate of O(\ln t √t). The proportionality constant in the convergence rate depends on the initial values at the nodes, the subgradient norms and, more interestingly, on both the speed of the network information diffusion and the imbalances of influence among the nodes.

Keywords:
Subgradient method Node (physics) Convex function Sequence (biology) Convergence (economics) Mathematical optimization Mathematics Convex optimization Function (biology) Strongly connected component Regular polygon Graph Rate of convergence Computer science Discrete mathematics Computer network

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1156
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33
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1.00
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Citation History

Topics

Distributed Control Multi-Agent Systems
Physical Sciences →  Computer Science →  Computer Networks and Communications
Cooperative Communication and Network Coding
Physical Sciences →  Computer Science →  Computer Networks and Communications
Stochastic Gradient Optimization Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
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