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Bias compensation recursive algorithm for dual-rate rational models

机译:双速率有理模型的偏差补偿递归算法

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摘要

In dual-rate rational systems, some output data are missing (unmeasurable) to make the traditional recursive least squares (RLS) parameter estimation algorithms invalid. In order to overcome this difficulty, this study develops a bias compensation RLS algorithm for estimating the missing outputs and then the model parameters. The algorithm based on auxiliary model and particle filter has four steps: (i) to establish an auxiliary model to estimate unmeasurable outputs, (ii) to compensate bias induced by correlated noise, (iii) to add a filter to improve estimation accuracy of the unmeasurable outputs and (iv) to obtain an unbiased parameter estimation. Three examples are selected for simulation demonstrations to give further guarantees on the usefulness of the proposed algorithms. The comparative studies show that the bias compensation RLS is more effective for such systems with dual-rate input and output data.
机译:在双速率有理系统中,某些输出数据丢失(无法测量),从而使传统的递归最小二乘(RLS)参数估计算法无效。为了克服这一困难,本研究开发了一种偏置补偿RLS算法,用于估算丢失的输出,然后估算模型参数。基于辅助模型和粒子滤波器的算法分四个步骤:(i)建立一个辅助模型以估计不可测量的输出;(ii)补偿由相关噪声引起的偏差;(iii)添加一个滤波器以提高估计的准确性。不可测量的输出;以及(iv)获得无偏参数估计。选择了三个示例进行仿真演示,以进一步保证所提出算法的有效性。比较研究表明,偏置补偿RLS对于具有双速率输入和输出数据的此类系统更为有效。

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