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Noncausal modeling and closed-loop optimal input design for cross-directional processes of paper machines

机译:造纸机横向过程的非因果建模和闭环最优输入设计

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We propose to use noncausal transfer functions to model the spatial behavior of cross-directional (CD) processes so as to circumvent the high-dimensionality of a causal transfer function. This noncausal representation is shown to have a causal-equivalent form. We prove that the covariance of maximum likelihood estimate of the causal-equivalent model asymptotically converges to that of the noncausal model. This result is then used to design optimal inputs in closed-loop for the original noncausal model of the CD process. An illustrative example is provided to highlight the advantage of using optimally designed excitation signal for CD closed-loop identification over white noise excitation or the current industrial practice of spatial bump excitation.
机译:我们建议使用非因果传递函数来建模横向(CD)过程的空间行为,以规避因果传递函数的高维性。该非因果表示形式显示为具有因果等效形式。我们证明了因果等效模型的最大似然估计的协方差渐近收敛于非因果模型的协方差。然后,将这个结果用于为CD过程的原始非因果模型设计最佳的闭环输入。提供了一个说明性示例,以突出显示使用优化设计的激励信号进行CD闭环识别的优势,而不是白噪声激励或空间颠簸激励的当前工业实践。

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