参数不确定矩阵加权网络的自适应一致性算法

Hieu Minh Nguyen, H. M. Nguyen, Viet Hoang Pham, Quoc Van Tran, C. Nguyen, M. Trinh, H. Ahn
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引用次数: 0

摘要

研究了具有参数不确定性的智能体在矩阵加权图上相互作用的一致性问题。首先,提出了一种单积分体的自适应矩阵加权一致性算法,然后将其推广到双阶和高阶积分体。其次,讨论了自适应模型-参考自适应矩阵加权一致性及其鲁棒性。对于所提出的一致性算法,给出了自适应变量收敛于不确定参数的条件。最后,讨论了共识算法在基于位移的网络定位和编队控制中的应用,并通过仿真进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive Consensus Algorithms for Matrix-Weighted Networks with Parametric Uncertainties
In this paper, we study the consensus problem for agents with parametric uncertainties interacting over matrix-weighted graphs. First, an adaptive matrix-weighted consensus algorithms for single-integrator agents is proposed and then extended to double- and higher-order integrator agents. Second, adaptive model-reference adaptive matrix-weighted consensus and its robustness are discussed. For each proposed consensus algorithm, conditions for the adaptive variables to converge to the uncertain parameters are also given. Finally, applications of the proposed consensus algorithms in displacement-based network localization and formation control are discussed and demonstrated by simulations.
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