Closely spaced multipath mitigation in GNSS receiver based on maximum likelihood estimation

Gao Yan, Li Qing
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引用次数: 3

Abstract

Multipath is the dominant source of positioning error in modern GNSS receiver. Maximum likelihood (ML) parameter estimation is an optimal method to mitigate the multipath effects while ML involves nonlinear optimization and requires iterative algorithms. Iterative methods usually lack of global convergence when the paths are closely spaced, if the initial value is arbitrarily assigned. In this paper, however, we first employ a grid search method to choose the initial value before iteration. Most computation of the grid search can be done offline. After that, an iterative method with simple forms is used to improve the parameter accuracy and global convergence can be achieved with just a few iterations. The simulations results show the estimator of time delay is almost unbiased when the time relative delay of two paths is larger than 0.20 chips.
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基于最大似然估计的GNSS接收机紧密间隔多径缓解
多径是现代GNSS接收机定位误差的主要来源。最大似然(ML)参数估计是缓解多径效应的最优方法,而ML涉及非线性优化,需要迭代算法。当路径间隔很近时,如果初始值是任意分配的,迭代方法通常缺乏全局收敛性。然而,在本文中,我们首先采用网格搜索方法在迭代前选择初始值。网格搜索的大部分计算可以离线完成。然后,采用形式简单的迭代方法提高参数精度,只需几次迭代即可实现全局收敛。仿真结果表明,当两个路径的时间相对延迟大于0.20芯片时,时延估计器几乎是无偏的。
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