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Several gradient parameter estimation algorithms for dual-rate sampled systems
DOI:10.1016/j.jfranklin.2013.08.016.png)
摘要
En 中文
This paper presents three identification methods for dual-rate sampled systems. The first method combines the stochastic gradient algorithm with the polynomial transformation technique, which can estimate the parameters of the identification model. The second method is the finite impulse response model based stochastic gradient algorithm, which can indirectly estimate the parameters of the dual-rate systems by using all the inputs and the available outputs. The third method is the missing output estimation model based stochastic gradient algorithm with a forgetting factor, which can directly estimate the parameters of the dual-rate systems by using all the inputs and all the outputs (include the estimated outputs). An example is provided to verify the effectiveness of the proposed methods. (C) 2013 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
Keyword:
LEAST-SQUARES IDENTIFICATION
HIERARCHICAL IDENTIFICATION
OUTPUT ESTIMATION
MODELS
期刊
J
IF:
3.7
论文数:
6.4K
被引数:
1.5W
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暂无机构信息
引用论文
State estimation and stabilization for nonlinear networked control systems with limited capacity channel有限容量信道下非线性网络控制系统的状态估计与镇定
Combined parameter and output estimation of dual-rate systems using an auxiliary model
AUTOMATICA
IF5.9

