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Adaptive Performance Seeking Control Using Fuzzy Model Reference Learning Control and Positive Gradient Control

机译:基于模糊模型参考学习控制和正梯度控制的自适应性能寻找控制

摘要

Performance Seeking Control attempts to find the operating condition that will generate optimal performance and control the plant at that operating condition. In this paper a nonlinear multivariable Adaptive Performance Seeking Control (APSC) methodology will be developed and it will be demonstrated on a nonlinear system. The APSC is comprised of the Positive Gradient Control (PGC) and the Fuzzy Model Reference Learning Control (FMRLC). The PGC computes the positive gradients of the desired performance function with respect to the control inputs in order to drive the plant set points to the operating point that will produce optimal performance. The PGC approach will be derived in this paper. The feedback control of the plant is performed by the FMRLC. For the FMRLC, the conventional fuzzy model reference learning control methodology is utilized, with guidelines generated here for the effective tuning of the FMRLC controller.
机译:寻求性能的控制试图找到将产生最佳性能的运行条件,并在该运行条件下控制设备。本文将开发一种非线性多变量自适应性能寻找控制(APSC)方法,并将在非线性系统上进行演示。 APSC由正梯度控制(PGC)和模糊模型参考学习控制(FMRLC)组成。 PGC计算所需性能函数相对于控制输入的正梯度,以便将设备设定点驱动到将产生最佳性能的操作点。 PGC方法将在本文中推导。工厂的反馈控制由FMRLC执行。对于FMRLC,将使用常规的模糊模型参考学习控制方法,并在此处生成有效调整FMRLC控制器的准则。

著录项

  • 作者

    Kopasakis George;

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  • 年度 1997
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