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Partially Coupled Stochastic Gradient Identification Methods for Non-Uniformly Sampled Systems

机译:非均匀采样系统的部分耦合随机梯度识别方法

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摘要

This technical note addresses identification problems of non-uniformly sampled systems. For the input-output representation of non-uniform discrete-time systems, a partially coupled stochastic gradient (C-SG) algorithm is proposed to estimate the model parameters with high computational efficiency compared with the standard stochastic gradient (SG) algorithm. The analysis indicates that the partially C-SG algorithm can give more accurate parameter estimates than the SG algorithm. The parameter estimates obtained using the partially C-SG algorithm converge to their true values as the data length approaches infinity.
机译:本技术说明解决了非均匀采样系统的识别问题。针对非均匀离散时间系统的输入输出表示,与标准随机梯度算法相比,提出了一种部分耦合随机梯度算法来估计模型参数,具有较高的计算效率。分析表明,与SG算法相比,部分C-SG算法可提供更准确的参数估计。当数据长度接近无穷大时,使用部分C-SG算法获得的参数估计值收敛到其真实值。

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