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Zonotope parameter identification for piecewise affine system

机译:分段仿射系统的Zonotope参数识别

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This paper studies one identification problem for a piecewise affine system which is a special nonlinear system. As the difficulty in identifying the piecewise affine system is to determine each separated region and each unknown parameter vector simultaneously, here we propose a multi-class classification process to determine each separated region. This multi-class classification process is similar to the classical data clustering process, and the merit of our strategy is that the first-order algorithm of convex optimization can be applied to achieve this classification process. Furthermore, to relax the strict probabilistic description on external noise and identify each unknown parameter vector, a zonotope parameter identification algorithm is proposed to compute a set that contains the parameter vector, consistent with the measured output and the given bound of the noise. To guarantee our derived zonotope not growing unbounded with iterations, a sufficient condition for this requirement to hold may be formulated as one linear matrix inequality. Finally, a numerical example confirms our theoretical results.
机译:本文研究了一个是一种特殊的非线性系统的分段仿射系统的一个识别问题。由于识别分段仿射系统的难度是同时确定每个分离的区域和每个未知参数向量,这里我们提出了一种多级分类过程来确定每个分离区域。该多级分类过程类似于经典数据聚类过程,我们的策略的优点是可以应用凸优化的一阶算法来实现该分类过程。此外,为了放宽对外部噪声的严格概率描述并识别每个未知参数向量,提出了一种Zonotope参数识别算法来计算包含参数向量的集合,与测量的输出和噪声的给定界限一致。为了保证我们的衍生的Zonotope不会因迭代而不受欢迎,可以将这种要求的足够条件作为一种线性矩阵不等式。最后,数值例子证实了我们的理论结果。

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