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The Impact of Satellite Time Group Delay and Inter-Frequency Differential Code Bias Corrections on Multi-GNSS Combined Positioning

机译:卫星时间群时延和频率间差分码偏差校正对多GNSS联合定位的影响

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摘要

We present quad-constellation (namely, GPS, GLONASS, BeiDou and Galileo) time group delay (TGD) and differential code bias (DCB) correction models to fully exploit the code observations of all the four global navigation satellite systems (GNSSs) for navigation and positioning. The relationship between TGDs and DCBs for multi-GNSS is clearly figured out, and the equivalence of TGD and DCB correction models combining theory with practice is demonstrated. Meanwhile, the TGD/DCB correction models have been extended to various standard point positioning (SPP) and precise point positioning (PPP) scenarios in a multi-GNSS and multi-frequency context. To evaluate the effectiveness and practicability of broadcast TGDs in the navigation message and DCBs provided by the Multi-GNSS Experiment (MGEX), both single-frequency GNSS ionosphere-corrected SPP and dual-frequency GNSS ionosphere-free SPP/PPP tests are carried out with quad-constellation signals. Furthermore, the author investigates the influence of differential code biases on GNSS positioning estimates. The experiments show that multi-constellation combination SPP performs better after DCB/TGD correction, for example, for GPS-only b1-based SPP, the positioning accuracies can be improved by 25.0%, 30.6% and 26.7%, respectively, in the N, E, and U components, after the differential code biases correction, while GPS/GLONASS/BDS b1-based SPP can be improved by 16.1%, 26.1% and 9.9%. For GPS/BDS/Galileo the 3rd frequency based SPP, the positioning accuracies are improved by 2.0%, 2.0% and 0.4%, respectively, in the N, E, and U components, after Galileo satellites DCB correction. The accuracy of Galileo-only b1-based SPP are improved about 48.6%, 34.7% and 40.6% with DCB correction, respectively, in the N, E, and U components. The estimates of multi-constellation PPP are subject to different degrees of influence. For multi-constellation combination SPP, the accuracy of single-frequency is slightly better than that of dual-frequency combinations. Dual-frequency combinations are more sensitive to the differential code biases, especially for the 2nd and 3rd frequency combination, such as for GPS/BDS SPP, accuracy improvements of 60.9%, 26.5% and 58.8% in the three coordinate components is achieved after DCB parameters correction. For multi-constellation PPP, the convergence time can be reduced significantly with differential code biases correction. And the accuracy of positioning is slightly better with TGD/DCB correction.
机译:我们提出了四星座(即GPS,GLONASS,北斗和伽利略)时域延迟(TGD)和差分码偏(DCB)校正模型,以充分利用所有四个全球导航卫星系统(GNSS)的码观测结果进行导航和定位。清楚地指出了用于多GNSS的TGD和DCB之间的关系,并证明了理论和实践相结合的TGD和DCB校正模型的等效性。同时,TGD / DCB校正模型已扩展到在多个GNSS和多频情况下的各种标准点定位(SPP)和精确点定位(PPP)方案。为了评估由多GNSS实验(MGEX)提供的导航消息和DCB中广播TGD的有效性和实用性,进行了单频GNSS电离层校正的SPP和双频无GNSS电离层的SPP / PPP测试具有四星座信号。此外,作者研究了差分代码偏差对GNSS定位估计的影响。实验表明,多星座组合SPP在进行DCB / TGD校正后性能更好,例如,对于仅基于GPS的b1型SPP​​,在N轴上的定位精度可以分别提高25.0%,30.6%和26.7%。 ,E和U分量,经过差分码偏置校正后,基于GPS / GLONASS / BDS b1的SPP可以提高16.1%,26.1%和9.9%。对于GPS / BDS / Galileo基于第三频率的SPP,在伽利略卫星DCB校正后,N,E和U分量的定位精度分别提高了2.0%,2.0%和0.4%。在N,E和U分量中,仅使用Galileo的基于b1的SPP的DCB校正的准确性分别提高了约48.6%,34.7%和40.6%。多星座PPP的估算受到不同程度的影响。对于多星座组合SPP,单频精度比双频组合稍好。双频组合对差分码偏差更敏感,尤其是对于第二和第三频组合,例如对于GPS / BDS SPP,在DCB之后,三个坐标分量的精度分别提高了60.9%,26.5%和58.8%。参数校正。对于多星座PPP,可以通过差分代码偏差校正来显着减少收敛时间。通过TGD / DCB校正,定位精度会稍好一些。

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