数学
自回归模型
最小二乘函数近似
自回归滑动平均模型
移动平均线
脉冲响应
广义最小二乘法
递归最小平方滤波器
鉴定(生物学)
算法
趋同(经济学)
系统标识
脉冲(物理)
应用数学
数学优化
总最小二乘法
计算机科学
分层数据库模型
非线性最小二乘法
估计理论
扩展(谓词逻辑)
分级控制系统
参数辨识问题
有限冲激响应
移动平均模型
迭代加权最小二乘法
作者
Feng Ding,Ling Xu,Xiao Zhang,Huan Xu,Yihong Zhou,Siyu Liu,Peng Liu,Xianfang Wang
标识
DOI:10.1177/09596518251362437
摘要
Hierarchical least squares is the extension of recursive least squares and the hierarchical least squares algorithm has higher computational efficiency than the recursive least squares algorithm. On the basis of reviewing and surveying some important contributions in the literature of system identification, this article explores some hierarchical extended identification methods for finite impulse response moving average models from observation data, including the hierarchical extended stochastic gradient algorithm, the hierarchical multi-innovation extended stochastic gradient algorithm, the hierarchical extended gradient algorithm, the hierarchical multi-innovation extended gradient algorithm, the hierarchical extended least squares algorithm and the hierarchical multi-innovation extended least squares algorithm. The proposed extended hierarchical methods for the finite impulse response moving systems can be extended to equation-error autoregressive moving average systems and output-error autoregressive moving average systems.
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