An improved Bayesian filter for nonlinear systems under multistep randomly delayed and lost measurements
Wenbo Zhang,
Guorui Cheng,
Shenmin Song
Abstract:This article addresses the Bayesian filtering problem for a class of nonlinear systems under multistep randomly delayed and lost measurements. A new measurement model is established that can characterize the random delay and loss of measurement data. First, an augmented Gaussian mixture filter framework is developed in the case of random delay of measurement data; the posterior probability density function after state augmentation is calculated by marginalizing over delay variables to extract accurate informat… Show more
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