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SNR-Dependent Environmental Model: Application in Real-Time GNSS Landslide Monitoring

机译:信噪比相关的环境模型:在实时GNSS滑坡监测中的应用

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摘要

The Global Navigation Satellite System (GNSS) is currently one of the important tools for landslide monitoring and early warning. However, the majority of GNSS devices are installed in mountainous areas and a variety of vegetation. These harsh environments lead to defective signals at high elevation angles, rendering real-time successive and reliable positioning results for monitoring difficult. In this study, an environmental model derived from signal-to-noise ratio (SNR) is proposed to enhance the precision and convergence time of positioning in harsh environments. A series of experiments are conducted on weighting and ambiguity-fixed models to evaluate performance. The results indicate that the proposed SNR-dependent environment model could lead to a significant improvement in precision and convergence time; with an obtained root mean squared result on the millimeter level, a convergence time of a few seconds, and utilization which could reach 100%, for continuous and reliable positioning results. These results indicate that the proposed SNR-dependent environment model enhances the performance of GNSS monitoring and early warning to provide continuous and reliable positioning results in real-time.
机译:目前,全球导航卫星系统(GNSS)是滑坡监测和预警的重要工具之一。但是,大多数GNSS设备安装在山区和各种植被中。这些恶劣的环境会导致高仰角的信号出现缺陷,从而使实时连续可靠的定位结果难以监控。在这项研究中,提出了一种基于信噪比(SNR)的环境模型,以提高恶劣环境中定位的精度和收敛时间。在加权和模糊度固定模型上进行了一系列实验,以评估效果。结果表明,所提出的与信噪比相关的环境模型可以显着提高精度和收敛时间。获得的毫米级均方根结果,几秒钟的收敛时间和高达100%的利用率,从而获得连续可靠的定位结果。这些结果表明,所提出的依赖于SNR的环境模型提高了GNSS监视和预警的性能,以提供连续,可靠的实时定位结果。

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