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Detecting, estimating and correcting multipath biases affecting GNSS signals using a marginalized likelihood ratio-based method

机译:使用基于边缘化似然比的方法检测,估计和校正影响GNSS信号的多径偏置

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摘要

In urban canyons, non-line-of-sight (NLOS) multipath interferences affect position estimation based on global navigation satellite systems (GNSS). This paper proposes to model the effects of NLOS multipath interferences as mean value jumps contaminating the GNSS pseudo-range measurements. The marginalized likelihood ratio test (MLRT) is then investigated to detect, identify and estimate the corresponding NLOS multipath biases. However, the MLRT test statistics is difficult to compute. In this work, we consider a Monte Carlo integration technique based on bias magnitude sampling. Jensen's inequal- ity allows this Monte Carlo integration to be simplified. The multiple model algorithm is also used to update the prior information for each bias magnitude sample. Some strategies are designed for estimating and correcting the NLOS multipath biases. In order to demonstrate the performance of the MLRT, experiments allowing several localization methods to be compared are performed. Finally, results from a measurement campaign conducted in an urban canyon are presented in order to evaluate the performance of the proposed algorithm in a representative environment.
机译:在城市峡谷中,非视距(NLOS)多径干扰会影响基于全球导航卫星系统(GNSS)的位置估计。本文建议对平均值跳变污染GNSS伪距测量的NLOS多径干扰的影响进行建模。然后研究边缘化似然比检验(MLRT),以检测,识别和估计相应的NLOS多径偏差。但是,MLRT测试统计数据很难计算。在这项工作中,我们考虑了基于偏差幅度采样的蒙特卡洛积分技术。詹森的不等式使这种蒙特卡洛积分得以简化。多模型算法还用于更新每个偏差量样本的先验信息。设计了一些策略来估计和纠正NLOS多径偏差。为了证明MLRT的性能,进行了允许比较几种定位方法的实验。最后,介绍了在城市峡谷中进行的一项测量活动的结果,以便评估该算法在代表性环境中的性能。

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