带输入约束的多智能体系统的最优一致性控制:一种状态分解方法

Hosub Lee, In Seok Park, P. Park
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引用次数: 0

摘要

本文利用状态分解方法研究了具有输入约束的多智能体系统的最优共识控制问题。状态分解方法是将状态空间划分为一致性子空间及其正交补子空间。所提出的等式条件保证了一致性子空间是一致的。因此,如果我们设计出正交子空间收敛于零的增益K,就得到了共识。求解全局成本函数最小的优化问题,保证了状态输入约束下的一致性控制。为了解决优化问题,采用线性矩阵不等式(LMI)公式。数值算例的仿真结果表明,所提出的条件达到了多智能体系统的一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Consensus Control for Multi-Agent Systems with Input Constraints: A State Decomposition Approach
This paper presents optimal consensus control for multi-agent systems with input constraints by using a state decomposition approach. The state decomposition approach is to divide the state space into consensus subspace and its orthonormal complement subspace. The proposed equality condition ensures that consensus subspace is consensus. Therefore, if we design the gain K that orthonormal subspace converges to zero, the consensus is achieved. Solving the proposed optimization problem that minimizes global cost function guarantees consensus control with input constraints of states. To solve the optimization problem, linear matrix inequality (LMI) formulation is used. The simulation results of numerical examples show that the proposed condition achieves multi-agent systems consensus.
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