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Distributed optimization with information-constrained population dynamics

机译:信息约束的种群动态的分布式优化

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摘要

In a multi-agent framework, distributed optimization problems are generally described as the minimization of a global objective function, where each agent can get information only from a neighborhood defined by a network topology. To solve the problem, this work presents an information-constrained strategy based on population dynamics, where payoff functions and tasks are assigned to each node in a connected graph. We prove that the so-called distributed replicator equation (DRE) converges to an optimal global outcome by means of the local-information exchange subject to the topological constraints of the graph. To show the application of the proposed strategy, we implement the DRE to solve an economic dispatch problem with distributed generation. We also present some simulation results to illustrate the theoretic optimality and stability of the equilibrium points and the effects of typical network topologies on the convergence rate of the algorithm. (C) 2018 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:在多主体框架中,分布式优化问题通常被描述为全局目标函数的最小化,其中每个主体只能从网络拓扑定义的邻域中获取信息。为了解决该问题,这项工作提出了一种基于种群动态的信息受限策略,其中将收益函数和任务分配给连接图中的每个节点。我们证明了所谓的分布式复制器方程(DRE)通过局部信息交换收敛于最优拓扑结果,该局部信息交换受图的拓扑约束。为了展示所提出策略的应用,我们实现了DRE,以解决分布式发电的经济调度问题。我们还提供了一些仿真结果,以说明平衡点的理论最优性和稳定性,以及典型网络拓扑对算法收敛速度的影响。 (C)2018富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

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  • 来源
    《Journal of the Franklin Institute》 |2019年第1期|209-236|共28页
  • 作者单位

    Univ Narino, Dept Ingn Elect, Pasto, Colombia;

    Univ los Andes, Dept Ingn Elect & Elect, Bogota, Colombia;

    Univ Rosario, Dept Matemat Aplicadas & Ciencias Comp, Bogota, Colombia;

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