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论文成果
A modified distributed optimization method for both continuous-time and discrete-time multi-agent systems
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论文类型: 期刊论文
发表时间: 2018-01-31
发表刊物: NEUROCOMPUTING
收录刊物: SCIE、EI
卷号: 275
页面范围: 725-732
ISSN号: 0925-2312
关键字: Multi-agent systems; Cost function; Convex optimization; Convergence rate; Lyapunov method
摘要: This paper discusses the distributed optimization problem for the continuous-time and discrete-time multi-agent systems. For such a problem, each agent possesses a local convex cost function only known by itself and all the agents converge to the optimizer of the sum of the local cost function through estimating the optimal states of the local cost function and exchanging states information between agents. Sufficient conditions for convergence to the optimizer of the continuous-time and discrete-time algorithms are provided by making use of the Lyapunov method. We also obtain the least convergence rate for the modified algorithm. Moreover, numerical simulations are supplied to testify the results we present. (C) 2017 Elsevier B.V. All rights reserved.

王东

教授   博士生导师   硕士生导师

性别: 男

毕业院校:大连理工大学

学位: 博士

所在单位:控制科学与工程学院

学科:控制理论与控制工程. 模式识别与智能系统. 导航、制导与控制

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