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GNSS Elevation-Dependent Stochastic Modeling and Its Impacts on the Statistic Testing

机译:GNSS高程相关的随机建模及其对统计检验的影响

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Only the correct stochastic model can be applied to derive the optimal parameter estimation and then realize the precision global navigation satellite system (GNSS) positioning. The key for refining the GNSS stochastic model is to establish the easy-to-use stochastic model that should capture the error characteristics adequately based on the estimated precisions from the real observations. In this paper, the authors study the GNSS elevation-dependent precision modeling and analyze its impact on the statistic testing involved in the adjustment reliability. With the zero-baseline dual-frequency Global Positioning System (GPS) data, the authors first estimate the elevation-dependent precisions and establish the stochastic models by fitting them with three predefined functions, including the unique precision function and the sine and exponential types of elevation-dependent functions. Three established models are then evaluated by their performance in the overall and w-statistic testing. The results indicated that the GNSS observation precisions are indeed elevation dependent, but this dependence differed from the observation types. The inadequate elevation-dependent model will result in the incorrect statistics and lead to larger wrong decisions, for instance, larger false alarms.
机译:只能使用正确的随机模型来推导最佳参数估计,然后才能实现精确的全球导航卫星系统(GNSS)定位。完善GNSS随机模型的关键是建立易于使用的随机模型,该模型应根据实际观测值的估计精度充分捕获误差特征。在本文中,作者研究了GNSS高程相关的精度模型,并分析了其对涉及调整可靠性的统计检验的影响。利用零基线双频全球定位系统(GPS)数据,作者首先估算与海拔相关的精度,并通过将其与三个预定义函数进行拟合来建立随机模型,这些函数包括唯一的精度函数以及正弦和指数类型。高程相关功能。然后,通过三个模型在整体和w统计量测试中的性能对其进行评估。结果表明,GNSS观测精度的确与海拔有关,但是这种依赖与观测类型不同。依赖于海拔的模型不足会导致错误的统计信息,并导致更大的错误决策,例如更大的错误警报。

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