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Robust tuning of fixed-structure controller for disk drives using statistical model and multi-objective genetic algorithms

机译:使用统计模型和多目标遗传算法的磁盘驱动器的固定结构控制器的鲁棒调谐

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This paper proposes a non-gradient based method for the parameter optimization of fixed-structure controllers in hard disk drives (HDDs). Besides satisfying multiple frequency-domain constraints, the primary target of HDD servo design alms at the minimization of position error signal (PES) for a large population of drives. This is made possible by adopting a new statistical disturbance model inside the optimization loop to evaluate the time-domain performance of candidate controllers. The convexity of multi-dimension searching space is lost because the controller structure is fixed. This non-convex multi-objective optimization problem (MOP) is solved by multi-objective genetic algorithms (MOGA), which are genetic algorithms (GA) combined with the concept of Pareto optimality. Multiple optimal solutions with trade-offs are provided to support decision making. A design example of tuning a track following controller is used to demonstrate the effectiveness of the proposed method.
机译:本文提出了一种基于非梯度基于的方法,用于硬盘驱动器(HDD)中的固定结构控制器参数优化。除了满足多个频域约束之外,HDD伺服设计ALM的主要目标在最小化位置误差信号(PES)中的大量驱动器。通过采用优化环路内的新统计干扰模型来评估候选控制器的时域性能来实现这一点。由于控制器结构固定,因此多维搜索空间的凸起丢失。这种非凸多目标优化问题(MOP)由多目标遗传算法(MOGA)解决,这些遗传算法(MOGA)是遗传算法(GA)与Pareto最优性的概念相结合。提供具有权衡的多种最佳解决方案来支持决策。调谐跟踪控制器的设计示例用于展示所提出的方法的有效性。

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