A two-time-scale neurodynamic approach to robust pole assignment

Xinyi Le, Jun Wang
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引用次数: 2

Abstract

This paper presents a two-time-scale neurodynamic optimization approach to robust pole assignment for synthesizing linear control systems. The problem is formulated as a bi-convex optimization problem with spectral or Frobenious condition number as robustness measure. Coupled recurrent neural networks are applied for solving the formulated problem in different time scales. Simulation results of the proposed neurodynamic approach for benchmark problems and control of autonomous underwater gliders are reported to demonstrate its superiority.
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鲁棒极点配置的双时间尺度神经动力学方法
提出了一种用于综合线性控制系统鲁棒极点配置的双时间尺度神经动力学优化方法。将该问题表述为一个以谱或Frobenious条件数作为鲁棒性度量的双凸优化问题。耦合递归神经网络应用于求解不同时间尺度的公式化问题。通过对自主水下滑翔机的基准问题和控制进行仿真,验证了该方法的优越性。
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