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首页> 外文期刊>International Journal of Adaptive Control and Signal Processing >Combined estimation of the parameters and states for a multivariable state-space system in presence of colored noise
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Combined estimation of the parameters and states for a multivariable state-space system in presence of colored noise

机译:在彩色噪声存在下对多变量状态空间系统的参数和状态的组合估计

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This article addresses the combined estimation issues of parameters and states for multivariable systems in the state-space form disturbed by colored noises. By utilizing the Kalman filtering principle and the coupling identification concept, we derive a Kalman filtering based partially coupled recursive generalized extended least squares (KF-PC-RGELS) algorithm to jointly estimate the parameters and the states. Using the past and the current data in parameter estimation, we propose a Kalman filtering based multi-innovation partially coupled recursive generalized extended least-squares algorithm to enhance the parameter estimation accuracy of the KF-PC-RGELS algorithm. Finally, a simulation example is provided to test and compare the performance of the proposed algorithms.
机译:本文讨论了由彩色噪音所干扰的状态空间形式的多变量系统的参数和各种参数的综合估算问题。通过利用卡尔曼滤波原理和耦合识别概念,我们推导出基于基于耦合的递归的递归通用延伸最小二乘(KF-PC-RGELS)算法的卡尔曼滤波,以共同估计参数和状态。使用过去和当前数据参数估计,我们提出了基于卡尔曼滤波的多重创新部分耦合递归通用延长最小二乘算法,以提高KF-PC-RGELS算法的参数估计精度。最后,提供了一种模拟示例来测试并比较所提出的算法的性能。

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