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A New Method for GNSS Multipath Mitigation with an Adaptive Frequency Domain Filter

机译:自适应频域滤波器的GNSS多径缓解新方法

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摘要

Multipath is the dominant error source for most fixed Global Navigation Satellite Systems (GNSS) sites and stations. The presence of multipath, particularly the multipath effect on pseudorange measurement, seriously affects positioning accuracy. Unfortunately, multipath effect reduction is still a challenging issue in high-accuracy GNSS positioning applications due to its special properties. To minimize the impact of the multipath effect, this paper focused on pseudorange multipath mitigation. First, the frequency spectrum of the code-minus-carrier divergence (CMCD) for Global Positioning System (GPS), Global Navigation Satellite System (GLONASS), and BeiDou Navigation Satellite System (BDS) satellites observed in different environments were analyzed, where we found that periodic fluctuations appeared in GPS and GLONASS as well as medium earth orbit (MEO) and inclined geosynchronous satellite orbit (IGSO) of BDS satellites in some situations, which manifested as peaks in the frequency domain. The results showed that the location of the frequency peaks in the frequency domain, width, and basic frequency spectrum intensity were different between different satellites and environments, causing difficulty in reducing the error impact. To eliminate such period fluctuations mainly caused by the multipath effect, a novel method based on a frequency domain filter was proposed in this paper. One of the keys of the proposed method was the use of short-time Fourier transformation (STFT) in the GNSS signal data processing to calculate the accurate local frequency spectrum when code-minus-carrier divergence (CMCD) was assumed to be time varying. Once the frequency spectrum was obtained, a new spectrum peak extraction method was used to locate the peak frequency position. By interpolation and inverse Fourier transformation, the influence of the spectrum peaks could be effectively eliminated, thus improving pseudorange precision. The experimental results showed that the periodic multipath effect could be greatly reduced by the proposed method.
机译:对于大多数固定的全球导航卫星系统(GNSS)站点和站,多径是主要的误差源。多径的存在,尤其是对伪距测量的多径效应,严重影响了定位精度。不幸的是,由于其特殊的性能,在高精度GNSS定位应用中,降低多径效应仍然是一个具有挑战性的问题。为了最大程度地减少多径效应的影响,本文重点介绍了伪距多径缓解技术。首先,分析了在不同环境中观测到的全球定位系统(GPS),全球导航卫星系统(GLONASS)和北斗导航卫星系统(BDS)卫星的码负载波发散(CMCD)的频谱,发现在某些情况下,GPS和GLONASS以及BDS卫星的中地球轨道(MEO)和倾斜地球同步卫星轨道(IGSO)出现周期性波动,并在频域中表现为峰值。结果表明,不同卫星和环境之间,频率峰值在频域中的位置,宽度和基本频谱强度都不同,从而难以减小误差影响。为了消除这种主要由多径效应引起的周期波动,提出了一种基于频域滤波器的新方法。该方法的关键之一是在假设码负载波发散(CMCD)随时间变化时,在GNSS信号数据处理中使用短时傅立叶变换(STFT)来计算准确的本地频谱。一旦获得了频谱,便使用一种新的频谱峰值提取方法来定位峰值频率位置。通过插值和傅里叶逆变换,可以有效地消除频谱峰值的影响,从而提高伪距精度。实验结果表明,该方法可以大大降低周期性的多径效应。

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