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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Filtering Based Recursive Least Squares Algorithm for Multi-Input Multioutput Hammerstein Models
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Filtering Based Recursive Least Squares Algorithm for Multi-Input Multioutput Hammerstein Models

机译:基于滤波的多输入多输出Hammerstein模型的递归最小二乘算法

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This paper considers the parameter estimation problem for Hammerstein multi-input multioutput finite impulse response (FIR-MA) systems. Filtered by the noise transfer function, the FIR-MA model is transformed into a controlled autoregressive model. The key-term variable separation principle is used to derive a data filtering based recursive least squares algorithm. The numerical examples confirm that the proposed algorithm can estimate parameters more accurately and has a higher computational efficiency compared with the recursive least squares algorithm.
机译:本文考虑了Hammerstein多输入多输出有限脉冲响应(FIR-MA)系统的参数估计问题。 通过噪声传递函数过滤,FIR-MA模型转换为受控自回归模型。 密钥可变分离原理用于导出基于数据滤波的递归最小二乘算法。 数值示例确认,与递归最小二乘算法相比,所提出的算法可以更准确地估计参数并且具有更高的计算效率。

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