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A multi-crossover genetic approach to multivariable PID controllers tuning

机译:多元交叉遗传算法进行PID控制器整定

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In this paper, we will propose a modified crossover formula in genetic algorithms (GAs), and use this method to determine PID controller gains for multivariable processes. It is well known that GA is globally optimal search method borrowing the concepts from biological evolutionary theory. In the traditional crossover fashion, only two parent chromosomes are usually used to be crossed by each other. The proposed algorithm, however, is designed to provide a more accurate adjusting direction for evolving offspring because of the use of multi-crossover genetic operations. Then we apply the innovative GA into the design of multivariable PID control systems for deriving optimal or near optimal control gains such that the defined performance criterion of integrated absolute error (IAE) is minimized as much as possible. Finally, a 2 x 2 multivariable controlled plant with strong interactions between input and output pairs will be illustrated to demonstrate the effectiveness of the proposed method. Some comparison results with the traditional GA and BLT method are also demonstrated in the simulation.
机译:在本文中,我们将在遗传算法(GA)中提出一种经过修改的交叉公式,并使用该方法来确定多变量过程的PID控制器增益。众所周知,遗传算法是从生物学进化理论中借鉴概念的全局最优搜索方法。以传统的交叉方式,通常仅使用两个亲本染色体相互杂交。但是,由于使用了多交叉遗传操作,因此提出的算法旨在为进化后代提供更准确的调整方向。然后,我们将创新的遗传算法应用于多变量PID控制系统的设计中,以得出最佳或接近最佳的控制增益,从而使定义的绝对绝对误差(IAE)性能标准尽可能最小化。最后,将说明在输入和输出对之间具有强大交互作用的2 x 2多变量受控工厂,以证明所提出方法的有效性。仿真中还展示了与传统GA和BLT方法的一些比较结果。

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