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首页> 外文期刊>IEEE Transactions on Acoustics, Speech, and Signal Processing >Identification of nonstationary models with application to myoelectric signals for controlling electrical stimulation of paraplegics
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Identification of nonstationary models with application to myoelectric signals for controlling electrical stimulation of paraplegics

机译:识别非平稳模型并应用于肌电信号以控制截瘫患者的电刺激

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摘要

It has been shown that the estimates of the nonstationary identifier proposed by A. Kitagawa and W. Gersch (1985) do indeed exist for all inputs because the formation is uniformly observable with probability one, and that the identifier is stable because the formulation is uniformly controllable. Some of the complicating factors concerning their nonstationary identification algorithm are clarified to establish its optimality and stability. Among these are the nonlinear and time varying nature of the formulation. It provides proofs that this nonstationary identifier's estimate exists, is stable, and is optimal for Gaussian noise inputs and is also optimal over a limited class of identifiers for non-Gaussian noise inputs and mean squared error loss function. Experimental results are included which demonstrates the superior performance of the nonstationary identifier over a piecewise stationary identifier operating on nonstationary electromyographic data.
机译:已经表明,A。Kitagawa和W. Gersch(1985)提出的非平稳标识符的估计确实存在于所有输入中,因为该地层可以以概率1均匀观察到,并且该标识符是稳定的,因为其公式是均匀的可控的澄清了有关其非平稳识别算法的一些复杂因素,以建立其最优性和稳定性。其中包括配方的非线性和时变特性。它提供了证明,该非平稳标识符的估计是存在的,稳定的,并且对于高斯噪声输入是最优的,并且对于非高斯噪声输入和均方误差损失函数,在有限的标识符类别上也是最优的。包括的实验结果表明,相对于对非平稳肌电图数据进行操作的分段固定标识符,非平稳标识符的性能更高。

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