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Distributed optimization in an energy-constrained network using a digital communication scheme

机译:使用数字通信方案的能源受限网络中的分布式优化

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We consider a distributed optimization problem where n nodes, Sl, l isin {1,..., n}, wish to minimize a common strongly convex function f(x), x = [x1,..., xn]T , and suppose that node Sl only has control of variable xl. The nodes locally update their respective variables and periodically exchange their values over noisy channels. Previous studies of this problem have mainly focused on the convergence issue and the analysis of convergence rate. In this work, we focus on the communication energy and study its impact on convergence. In particular, we study the minimum amount of communication energy required for nodes to obtain an isin-minimizer of f(x) in the mean square sense. In an earlier work, we considered analog communication schemes and proved that the communication energy must grow at the rate of Omega(isin-1) to obtain an isin-minimizer of a convex quadratic function. In this paper, we consider digital communication schemes and propose a distributed algorithm which only requires communication energy of O ((log isin-1)3) to obtain an isin-minimizer of f(x). Furthermore, the algorithm provided herein converges linearly. Thus, distributed optimization with digital communication schemes is significantly more energy efficient than with analog communication schemes.
机译:我们考虑一个分布式优化问题,其中n个节点S l ,l在{1,...,n}中,希望最小化一个公共的强凸函数f(x),x = [x < sub> 1 ,...,x n ] T ,并假设节点S l 仅具有变量x的控制权 l 。节点在本地更新其各自的变量,并在嘈杂的信道上定期交换其值。以前对该问题的研究主要集中在收敛问题和收敛速度分析上。在这项工作中,我们专注于通信能量,并研究其对融合的影响。特别是,我们研究节点获得均方根f(x)的isin-minimizer所需的最小通信能量。在较早的工作中,我们考虑了模拟通信方案,并证明通信能量必须以Omega(isin -1 )的速率增长才能获得凸二次函数的isin最小化器。在本文中,我们考虑了数字通信方案并提出了一种分布式算法,该算法仅需要O((log isin -1 3 )的通信能量即可获得isin-minimizer f(x)的此外,本文提供的算法线性收敛。因此,与模拟通信方案相比,数字通信方案的分布式优化在能源效率上要高得多。

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