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Uncombined precise point positioning with triple-frequency GNSS signals

机译:结合精确的点定位与三频GNSS信号

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With the modernisation of GPS and the development of GALILEO/BDS, more satellites can transmit multi-frequency signals, which brings new opportunities and challenges for data integration in multiple systems. This work focuses on the performance of triple-frequency precise point positioning (PPP) and the phase anomaly phenomenon due to the introduction of the third frequency. First, three PPP models, particularly the triple-frequency PPP model using uncombined observations, are derived. The new biases, inter-frequency biases (IFBs), are estimated to compensate for the pseudorange hardware delays in the triple-frequency PPP model. Then the reason for the phase anomaly on the third frequency is analysed theoretically. Finally, three PPP models with real GPS/GALILEO/BDS triple-frequency data are performed to evaluate the performance of triple-frequency PPP and the influence of time-variant phase hardware delays. Due to the smaller magnitude of the time-dependent phase hardware delays for GALILEO and BDS, even regardless of them, the triple-frequency PPP model can achieve a similar or better positioning accuracy. However, this is not the case for GPS. The results show that the traditional clock products based on dual-frequency ionosphere-free (IF) combinations cannot be directly used in the GPS triple-frequency PPP because of the time-dependent part of the phase hardware delays. Ignoring the time-dependent part will cause a much poorer positioning performance compared with dual-frequency PPP. After adding a small amount of process noise to the GPS ambiguities on the third frequency, the 3D positioning accuracy of the GPS/GALILEO/BDS triple PPP model can achieve marginal improvement for both static and kinematic mode. (C) 2018 COSPAR. Published by Elsevier Ltd. All rights reserved.
机译:随着GPS的现代化和GALILEO / BDS的发展,更多的卫星可以发射多频信号,这为在多个系统中进行数据集成带来了新的机遇和挑战。这项工作着重于三频精确点定位(PPP)的性能以及由于引入第三频率而引起的相位异常现象。首先,推导了三个PPP模型,特别是使用未合并观测值的三频PPP模型。估计新的偏差,即频率间偏差(IFB),以补偿三频PPP模型中的伪距硬件延迟。然后从理论上分析了第三频率上相位异常的原因。最后,使用三个具有真实GPS / GALILEO / BDS三频数据的PPP模型来评估三频PPP的性能以及时变相位硬件延迟的影响。由于GALILEO和BDS随时间变化的相位硬件延迟的幅度较小,即使不考虑它们,三频PPP模型也可以实现相似或更好的定位精度。但是,GPS并非如此。结果表明,由于相位硬件延迟与时间有关,因此基于双频无电离(IF)组合的传统时钟产品不能直接用于GPS三频PPP。与双频PPP相比,忽略与时间有关的部分将导致定位性能差得多。在向第三频率上的GPS模糊度添加少量过程噪声之后,GPS / GALILEO / BDS三重PPP模型的3D定位精度可以在静态和运动学模式下实现少量改进。 (C)2018年COSPAR。由Elsevier Ltd.出版。保留所有权利。

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