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Closed-loop identification of unstable systems using noncausal FIR models

机译:使用非广域杉木模型的不稳定系统闭环识别

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Noncausal finite impulse response (FIR) models are used for closed-loop identification of unstable multi-input, multi-output plants. These models are shown to approximate the Laurent series inside the annulus between the asymptotically stable pole of the largest modulus and the unstable pole of the smallest modulus. By delaying the measured output relative to the measured input, the identified FIR model is a noncausal approximation of the unstable plant. We present examples to compare the accuracy of the identified model obtained using least squares, instrumental variables methods, and prediction error methods for both infinite impulse response (IIR) and noncausal FIR models under arbitrary noise that is fed back into the loop. Finally, we reconstruct an IIR model of the system from its stable and unstable parts using the eigensystem realisation algorithm.
机译:非共用有限脉冲响应(FIR)模型用于不稳定多输入,多输出工厂的闭环识别。 这些模型被示出为近似于最大模量和最小模量的不稳定极之间的渐近稳定极之间的环状序列。 通过延迟相对于测量输入的测量输出,所识别的FIR模型是不稳定植物的非共同逼近。 我们提出了示例以比较使用最小二乘,仪器变量方法和预测误差方法获得的识别模型的准确性,以及在反馈到循环中的任意噪声下的无限脉冲响应(IIR)和非共噪声模型的预测误差方法。 最后,我们使用Eigensystem实现算法从其稳定和不稳定部件重建系统的IIR模型。

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