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Recursive filtering for a class of nonlinear systems with missing measurements

机译:一类缺失测量的非线性系统的递归滤波

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摘要

This paper is concerned with the finite-horizon recursive filtering problem for a class of nonlinear time-varying systems with missing measurements. The missing measurements are modeled by a series of mutually independent random variables obeying Bernoulli distributions with possibly different occurrence probabilities. Attention is focused on the design of a recursive filter such that, for the missing measurements, an upper bound for the filtering error covariance is guaranteed and such an upper bound is subsequently minimized by properly designing the filter parameters at each sampling instant. The desired filter parameters are obtained by solving two Riccati-like difference equations that are of a recursive form suitable for online applications. A simulation example is exploited to demonstrate the effectiveness of the proposed filter design scheme. © 2012 IEEE.
机译:本文涉及一类缺少度量的非线性时变系统的有限水平递归滤波问题。缺失的测量值由一系列相互独立的随机变量建模,这些随机变量服从伯努利分布,且可能具有不同的出现概率。注意集中在递归滤波器的设计上,使得对于丢失的测量,保证滤波误差协方差的上限,并且随后通过在每个采​​样时刻适当地设计滤波器参数来最小化这种上限。通过求解两个类似Riccati的差分方程式获得所需的滤波器参数,这些方程式具有递归形式,适用于在线应用。利用一个仿真实例来证明所提出的滤波器设计方案的有效性。 ©2012 IEEE。

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