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Selecting the initial input for iterative learning control: Algorithms with experimental verification

机译:选择迭代学习控制的初始输入:实验验证的算法

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The initial choice of input in iterative learning control (ILC) generally has a significant effect on the error incurred over subsequent trials. In this paper techniques are developed which use experimental data gathered over previous applications of ILC in order to generate an initial input signal for the tracking of a new reference trajectory. A model-based approach is then incorporated to overcome the limitation of insufficient previous experimental data, and a robust design procedure is developed. Experimental evaluation results are obtained using a gantry robot facility.
机译:迭代学习控制(ILC)中输入的初始选择通常对随后试验产生的错误产生显着影响。在本文中,开发了使用在ILC的先前应用上收集的实验数据的技术,以便为跟踪新参考轨迹而产生初始输入信号。然后纳入基于模型的方法以克服先前的实验数据不足的限制,并且开发了一种坚固的设计过程。使用龙门机器人设施获得实验评估结果。

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