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Frontiers of Information Technology & Electronic Engineering

ISSN 2095-9184

Frontiers of Information Technology & Electronic Engineering  2017, Vol. 18 Issue (8): 1071-1081   https://doi.org/10.1631/FITEE.1601422
  本期目录
一种新型的有向拓扑条件下普通线性多智能体系统的一致性协议
李浩亮(), 杨任农, 李秋妮
空军工程大学航空航天工程学院,中国西安,710038
Designing a novel consensus protocol formultiagent systemswith general dynamics under directed networks
Hao-liang LI(), Ren-nong YANG, Qiu-ni LI
Aeronautics and Astronautics Engineering College, Air Force Engineering University, Xi’an 710038, China
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摘要:

本文研究了普通线性多智能体系统在有向拓扑条件下的一致性问题。首先基于分布式PID(Proportional-integral-derivative)控制提出了一种新的一致性协议,然后通过变量转换将一致性问题转变为一个渐进稳定问题,通过状态投影方法给出了系统实现一致性的充分必要条件和一致性函数的显示表达式,然后构建Lyapunov函数,基于线性矩阵不等式(Linear matrix inequality, LMI)给出了一致性协议中增益矩阵的范围,最后通过两组实验来验证这种方法的优势。仿真结果表明了所提方法的有效性。

Abstract

The consensus problem for general linear multi-agent systems (MASs) under directed topology is investigated. First, a novel consensus protocol based on proportional-integral-derivative (PID) control is proposed. Second, the consensus problem is converted into an asymptotic stability problem through transformations. Third, through a state projection method the consensus condition is proved and the explicit expression of the consensus function is given. Then, a Lyapunov function is constructed and the gain matrices of the protocol are given based on the linear matrix inequality. Finally, two experiments are conducted to explain the advantages of the method. Simulation results show the effectiveness of the proposed algorithm.

Key wordsMulti-agent    Consensus    PID control    Linear matrix inequality
收稿日期: 2016-07-16      出版日期: 2017-10-31
通讯作者: 李浩亮     E-mail: lihaoliang10524@163.com
Corresponding Author(s): Hao-liang LI   
 引用本文:   
李浩亮, 杨任农, 李秋妮. 一种新型的有向拓扑条件下普通线性多智能体系统的一致性协议[J]. Frontiers of Information Technology & Electronic Engineering, 2017, 18(8): 1071-1081.
Hao-liang LI, Ren-nong YANG, Qiu-ni LI. Designing a novel consensus protocol formultiagent systemswith general dynamics under directed networks. Front. Inform. Technol. Electron. Eng, 2017, 18(8): 1071-1081.
 链接本文:  
https://academic.hep.com.cn/fitee/CN/10.1631/FITEE.1601422
https://academic.hep.com.cn/fitee/CN/Y2017/V18/I8/1071
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