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Design and performance analysis of optimal reduced order H-infinity controller: L1 norm based genetic algorithm technique

机译:最优降阶H-∞控制器的设计和性能分析:基于L1范数的遗传算法技术

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摘要

The H-infinity methods are widely used in control system to synthesize controller, achieving stabilization with assured performance. Usually, the order of designed H- infinity controller is as high as the order of the considered system. The design and implementation of full-order H- infinity controller often require advanced hardware and high computational cost. However, if a restriction on the maximum order of the controller is imposed, that is lower than the order of the system, the problem becomes non-convex and non- smooth (non-differentiable), and it is relatively difficult to solve. In this paper, an optimal reduced order H-infinity controller, based on Hankel singular values (HSV), has been proposed using genetic algorithm (GA) on the basis of minimization of Li norm of the error function. The algebraic Riccati equation (ARE) has been used to design H-infinity controller for a boiler system. The obtained results have been compared with well know hybrid algorithm for non-smooth and non-convex optimization based on quasi-Newton updating and gradient sampling method.
机译:H-infinity方法广泛用于控制系统中以合成控制器,从而在确保性能的同时实现稳定。通常,设计的H-∞控制器的阶数与所考虑系统的阶数一样高。全阶H-∞控制器的设计和实现通常需要先进的硬件和较高的计算成本。然而,如果施加对控制器的最大阶数的限制,即低于系统的阶数,则该问题变得不凸且不平滑(不可微分),并且相对难以解决。在最小化误差函数的Li范数的基础上,利用遗传算法(GA)提出了一种基于Hankel奇异值(HSV)的最优降阶H-∞控制器。代数Riccati方程(ARE)已用于设计锅炉系统的H-infinity控制器。将所得结果与基于拟牛顿更新和梯度采样方法的非光滑非凸优化混合算法进行了比较。

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