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First order iterative learning control for a single axis piezostage system

机译:单轴压电系统的一级迭代学习控制

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Nowadays many machines and robots are programmed to perform the same task repeatedly. The Iterative Learning Control (ILC) paradigm is based on the idea that the performance of a system that executes the same trial multiple times can be improved by learning from the previous iterations. The objective of ILC is to improve the batch process performance by incorporating past trials error information into the control reference signal for the subsequent iteration. The ILC algorithms are categorized with respect to the number of past iterations considered to compute the next control signal and the first order ILC includes those algorithms considering only information about the last trial. In this paper different first order ILC update laws have been considered and compared controlling a Single-Input Single-Output (SISO) micro-positioning piezostage system. The proposed comparison allows to evaluate the performance of different first order ILC algorithms tested on the considered real world case study.
机译:如今,许多机器和机器人被编程为反复执行相同的任务。迭代学习控制(ILC)范例基于这样的想法:可以通过从先前的迭代中学习来提高执行相同试验的系统的性能。 ILC的目的是通过将过去的试验误差信息结合到控制参考信号中来改善批处理性能以进行随后的迭代。对于计算下一个控制信号的过去迭代的数量,ILC算法分类,并且第一阶ILC包括考虑关于上次试验的信息的那些算法。在本文中,已经考虑了不同的一阶ILC更新法律,并将控制单输入单输出(SISO)微定位压电管系统进行比较。所提出的比较允许评估在考虑的真实世界案例研究上测试的不同一阶ILC算法的性能。

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