Accelerated model reference adaptation via Liapunov and Steepest descent design techniques

H. Shahein, M. Ghonaimy, D. Shen
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引用次数: 1

Abstract

A method for accelerating the convergence in model reference adaptive control systems is presented. The novel feature is to feedback an appropriate function of the parameter misalignment signal to each adjusting mechanism channel. The adaptive loops incorporating feedback can be synthesized either directly from a Liapunov Function or indirectly from the minimization of a Liapunov function along the steepest descent path. In both cases, the derivative of the Liapunov function is negative definite in error and parameter misalignment, whereas it is only semi-definite in previous work. The advantages are easy implementation, and rapid convergence to zero of both the system response error and the errors of the adjustable parameters. Simulation studies on a second order system confirm the theoretical predictions.
通过Liapunov和最陡下降设计技术加速模型参考自适应
提出了一种加速模型参考自适应控制系统收敛的方法。新颖的特点是将参数失调信号的适当函数反馈到各调节机构通道。结合反馈的自适应回路可以直接由Liapunov函数合成,也可以间接由Liapunov函数沿最陡下降路径的最小化合成。在这两种情况下,Liapunov函数的导数在误差和参数偏差方面是负确定的,而在以前的工作中它只是半确定的。该方法的优点是易于实现,系统响应误差和可调参数误差都能快速收敛到零。对二阶系统的仿真研究证实了理论预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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