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Robust and adaptive design of numerical optimization-based extremum seeking control

机译:基于数值优化的极值搜索控制的鲁棒自适应设计

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We consider the employment of numerical optimization and state regulation to solve the extremum seeking control (ESC) problem, which does not assume the time scale separation between the plant dynamics and the extremum seeking loop. Extremum seeking is realized via a state regulator that drives the state traveling along a convergent set point sequence generated by a numerical optimization algorithm. In this paper, we propose a novel design of an asymptotic state regulator via output tracking for state feedback linearizable systems, where we trade off finite time state regulation to obtain flexibility in designing a robust extremum seeking controller. Existing techniques such as nonlinear damping and nonlinear adaptive control are then used to deal with input disturbance and unmodeled plant dynamics. Simulation examples illustrate the effectiveness of the basic and robust extremum seeking schemes, and some design guidelines are provided for engineering applications.
机译:我们考虑采用数值优化和状态调节来解决极值搜索控制(ESC)问题,该问题不假定工厂动态和极值搜索回路之间的时间尺度分离。极值搜索是通过状态调节器实现的,该状态调节器驱动状态沿着由数值优化算法生成的收敛设定点序列行进。在本文中,我们为状态反馈线性化系统提出了一种通过输出跟踪的渐近状态调节器的新颖设计,其中我们权衡了有限时间状态调节以在设计鲁棒极值搜索控制器时获得灵活性。然后使用诸如非线性阻尼和非线性自适应控制之类的现有技术来处理输入扰动和未建模的工厂动力学。仿真示例说明了基本和鲁棒的极值搜索方案的有效性,并为工程应用提供了一些设计准则。

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