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Iterative learning control for discrete time systems using optimal feedback and feedforward actions

机译:使用最佳反馈和前馈动作的离散时间系统的迭代学习控制

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An algorithm for iterative learning control is proposed based on an optimization principle used by other authors to derive gradient type algorithms. The new algorithm is a descent algorithm and has potential benefits which include realization in terms of Riccati feedback and feed-forward components. This realization also has the advantage of implicitly ensuring automatic step size selection and hence guaranteeing convergence without the need for empirical choice of parameters. The algorithm achieves a geometric rate of convergence for invertible plants which can be arbitrarily changed by design parameters.
机译:提出了一种基于其他作者推导梯度类型算法的优化原理的迭代学习控制算法。新算法是一种下降算法,具有潜在的好处,其中包括在Riccati反馈和前馈组件方面的实现。这种实现还具有以下优点:隐式地确保自动步长选择,并因此确保收敛,而无需经验性地选择参数。该算法为可逆植物实现了几何收敛速度,该速度可以通过设计参数任意更改。

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