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An efficient two-fold marginalized Bayesian filter for multipath estimation in satellite navigation receivers

机译:用于卫星导航接收器中多径估计的有效二倍边缘化贝叶斯滤波器

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摘要

Multipath is today still one of the most critical problems in satellite navigation, in particular in urban environments, where the received navigation signals can be affected by blockage, shadowing, and multipath reception. Latest multipath mitigation algorithms are based on the concept of sequential Bayesian estimation and improve the receiver performance by exploiting the temporal constraints of the channel dynamics. In this paper, we specifically address the problem of estimating and adjusting the number of multipath replicas that is considered by the receiver algorithm. An efficient implementation via a two-fold marginalized Bayesian filter is presented, in which a particle filter, grid-based filters, and Kalman filters are suitably combined in order to mitigate the multipath channel by efficiently estimating its time-variant parameters in a track-before-detect fashion. Results based on an experimentally derived set of channel data corresponding to a typical urban propagation environment are used to confirm the benefit of our novel approach.
机译:如今,多径仍然是卫星导航中最关键的问题之一,尤其是在城市环境中,在该环境中,接收到的导航信号可能会受到阻塞,阴影和多径接收的影响。最新的多径缓解算法基于顺序贝叶斯估计的概念,并通过利用信道动态的时间约束来提高接收机性能。在本文中,我们专门解决了接收器算法考虑的估计和调整多路径副本数量的问题。提出了一种通过双重边缘化贝叶斯滤波器的有效实现方式,其中将粒子滤波器,基于网格的滤波器和卡尔曼滤波器进行了适当组合,以便通过有效地估计轨道中的时变参数来缓解多径信道。检测前时尚。基于与典型的城市传播环境相对应的一组实验数据得出的实验结果被用于确认我们新颖方法的益处。

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