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Consistent identification of dynamic networks subject to white noise using Weighted Null-Space Fitting ?

机译:使用加权空空间拟合的动态网络对白噪声的一致性识别

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Identification of dynamic networks has been a flourishing area in recent years. However, there are few contributions addressing the problem of simultaneously identifying all modules in a network of given structure. In principle the prediction error method can handle such problems but this methods suffers from well known issues with local minima and how to find initial parameter values. Weighted Null-Space Fitting is a multi-step least-squares method and in this contribution we extend this method to rational linear dynamic networks of arbitrary topology with modules subject to white noise disturbances. We show that WNSF reaches the performance of PEM initialized at the true parameter values for a fairly complex network, suggesting consistency and asymptotic efficiency of the proposed method.
机译:近年来,识别动态网络是一个繁荣的地区。但是,很少有一些贡献解决了同时识别给定结构网络中的所有模块的问题。原则上,预测误差方法可以处理此类问题,但这种方法遭受了众所周知的众所周知的问题,以及如何查找初始参数值。加权空空间拟合是一种多步骤最小二乘法,在这一贡献中,我们将这种方法扩展到任意拓扑结构的合理线性动态网络,模块经受白噪声干扰。我们表明WNSF在真正参数值下初始化PEM的性能,以获得相当复杂的网络,表明所提出的方法的一致性和渐近效率。

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