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An investigation into the correlations among GNSS observations and their impact on height and zenith wet delay estimation for medium and long baselines

机译:对GNSS观测值之间的相关性及其对中长基线的高度和天顶湿延迟估计的影响进行调查

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摘要

Most stochastic modelling techniques neglect the correlations among the raw un-differenced observations when forming the variance–covariance matrix of the Global Navigation Satellite System (GNSS) observations. Some methods were developed to model these correlations. One such method is the Minimum Norm Quadratic Unbiased Estimator (MINQUE). Studies have shown that MINQUE improves ambiguity resolution, and ultimately, the positioning solution in short baselines. However, its effect in cases of processing with longer baselines and on the estimation of zenith wet delay (ZWD) is somewhat unknown. In this paper, a comparison between the impact of neglecting the correlations among the observations using an elevation-angle-dependent model (EADM) and modelling the correlations using MINQUE on height determination and ZWD for medium and long baselines is carried out. The initial testing was carried out across two Australian GNSS stations with a medium-length baseline throughout a three-week campaign. The results showed that using MINQUE did not resolve the coordinate, height and wet delay components as accurately as the EADM. The results were further verified with two long-baseline campaigns whereby EADM was also able to provide better wet delay estimates. The coordinate results were, however, mixed. Overall, the study concluded that the inclusion of the correlations among the observations, in general, do not improve the resolution of the coordinate and wet delay estimates.
机译:当形成全球导航卫星系统(GNSS)观测值的方差-协方差矩阵时,大多数随机建模技术会忽略原始未差异观测值之间的相关性。开发了一些方法来对这些相关性进行建模。一种这样的方法是最小范数二次无偏估计器(MINQUE)。研究表明,MINQUE改善了歧义度,最终改善了短基线中的定位解决方案。但是,其在基线较长的处理以及对天顶湿延迟(ZWD)估计的影响方面尚不清楚。在本文中,比较了使用仰角依赖模型(EADM)忽略观测值之间的相关性和使用MINQUE对中长基线的高度确定和ZWD建模相关性之间的影响。最初的测试是在两个澳大利亚GNSS站点上进行的,在整个三周的活动中,它们的基线为中等长度。结果表明,使用MINQUE不能像EADM那样精确地解析坐标,高度和湿延迟分量。通过两个长期基线活动进一步验证了结果,从而使EADM能够提供更好的湿延迟估计。但是,坐标结果好坏参半。总体而言,该研究得出的结论是,将观测值之间的相关性包括在内通常不会提高坐标和湿延迟估计的分辨率。

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