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Nonlinear system identification and control using a real-coded genetic algorithm

机译:使用实编码遗传算法的非线性系统识别与控制

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A real-coded genetic algorithm (GA) applied to the system identification and control for a class of nonlinear systems is proposed in this paper. It is well known that GA is a globally optimal method motivated from natural evolutionary concepts. For solving a given optimization problem, there are two different kinds of GA operations: binary coding and real coding. In general, a real-coded GA is more suitable and convenient to deal with most practical engineering applications. In this paper, in the beginning we attempt to utilize a real-coded GA to identify the unknown system which its structure is assumed to be known previously. Next, according to the estimated system model an optimal off-line PID controller is optimally solved by also using the real-coded GA. Two simulated examples are finally given to demonstrate the effectiveness of the proposed method.
机译:提出了一种用于一类非线性系统的系统辨识与控制的实编码遗传算法。众所周知,遗传算法是一种基于自然进化概念的全局最优方法。为了解决给定的优化问题,有两种不同的GA运算:二进制编码和实数编码。通常,实数编码的GA更适合处理大多数实际工程应用。在本文中,首先,我们尝试使用实码遗传算法来识别未知系统,假定该系统的结构先前已知。接下来,根据估计的系统模型,还通过使用实数编码GA来优化求解最佳的离线PID控制器。最后给出了两个仿真例子来说明所提方法的有效性。

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