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Genetic algorithm application to controller optimization problems with non-analytic solutions

机译:遗传算法在非解析解控制器优化问题中的应用

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Genetic algorithms (GAs) offer a numerical search method which does not require a statement of the mathematical relationship between the performance criteria and the parameter update rule. The objective of this study is to demonstrate that GAs provide a method of optimizing control system problems with analytically intractable constraints. A linear missile airframe and actuator state space model is developed, and a reduced order linear feedback controller is implemented. A genetic algorithm is constructed to optimize the controller parameters, first with respect to a weighted linear quadratic performance index. Penalty functions are then developed to introduce performance constraints on the maximum rise time, allowable settling error, and peak actuator effort.
机译:遗传算法(气体)提供了一个数字搜索方法,不需要在性能标准和参数更新规则之间进行数学关系的陈述。本研究的目的是证明天然气提供了一种在分析棘手的约束中优化控制系统问题的方法。开发了线性导弹机身和致动器状态空间模型,实现了减少的顺序线性反馈控制器。构建遗传算法以优化控制器参数,首先相对于加权线性二次性能指标。然后开发出惩罚功能,以引入最大上升时间,允许的沉降误差和峰值执行器努力的性能约束。

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