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An approach for instantaneous ambiguity resolution for medium- to long-range multiple reference station networks

机译:中远程多参考站网络的瞬时歧义解决方法

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Integer ambiguity resolution (AR) is a prerequisite for all high-precision (centimetre level) GPS applications that utilise multiple reference station (MRS) networks. However, due to the presence of distance-dependent GPS errors, notably atmospheric refraction, AR across the network is difficult on an epoch-by-epoch basis, especially for medium- to long-range (typically 30-130 km as used here) MRS networks. This paper presents an approach for medium- to long-range instantaneous AR for MRS networks, based on an ionosphere-weighted observation model and network geometry constraints, along with a multiple ambiguity validation test procedure. The performance of the proposed method was demonstrated through two case-study examples from Australia and Norway. Our test results show that the instantaneous AR success rate varied from 93% (131 km baseline) to 98% (35 km baseline). It is also shown that the adopted high-precision prediction models for the double-difference (DD) ionospheric delay and residual tropospheric zenith delay (RTZD) are of benefit to the high success rate of the network AR. Due to its epoch-by-epoch nature, the proposed approach is insensitive to cycle-slips, rising or setting satellites, or loss-of-lock.
机译:整数歧义分辨率(AR)是利用多个参考站(MRS)网络的所有高精度(厘米级)GPS应用的先决条件。但是,由于存在与距离有关的GPS误差,尤其是大气折射,因此跨网络的AR很难逐个周期地传输,特别是对于中距离到远程(此处通常使用30-130 km) MRS网络。本文基于电离层加权观测模型和网络几何约束以及多重歧义验证测试程序,提出了一种用于MRS网络的中至远程瞬时AR的方法。通过两个来自澳大利亚和挪威的案例研究实例证明了该方法的性能。我们的测试结果表明,即时AR成功率从93%(基线为131 km)到98%(基线为35 km)不等。还表明,针对双差(DD)电离层延迟和残余对流层天顶延迟(RTZD)所采用的高精度预测模型有利于网络AR的高成功率。由于其逐个时期的性质,所提出的方法对周期滑移,上升或设置卫星或失锁不敏感。

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