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The Unified Form of Code Biases and Positioning Performance Analysis in Global Positioning System (GPS)/BeiDou Navigation Satellite System (BDS) Precise Point Positioning Using Real Triple-Frequency Data

机译:使用真实三频数据的全球定位系统(GPS)/北斗导航卫星系统(BDS)精确点定位中代码偏移和定位性能分析的统一形式

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摘要

Multi- system and multi-frequency are two key factors that determine the performance of precise point positioning. Both multi-frequency and multi-system lead to new biases, which are not solved systematically. This paper concentrates on mathematical models of biases, influences of these biases, and positioning performance analysis of different observation models. The biases comprise the inter-frequency clock bias in multi-frequency and the inter-system clock bias in multi-system. The former is the residual differential code biases (DCBs) from receiver clock and satellite clock and usually occurs at the third frequency, the latter is the deviation of the receiver clock errors in different systems. Unified mathematical models of the biases are presented by analyzing the general formula of observation equations. The influences of these biases are validated by experiments with corresponding observation models. Subsequently, the experiments, which are based on the data at five globally distributed stations in Multi-Global Navigation Satellite System (GNSS) Experiment (MGEX) on day of year 100, 2018, assess positioning performance of different observation models with combination of frequencies (dual-frequency or triple- frequency) and systems (BeiDou Navigation Satellite System (BDS) or Global Positioning System (GPS)). The results show that the performances of triple-frequency models are almost as the same level as the dual-frequency models. They provide scientific support for the triple-frequency ambiguity-fixed solution which has a better convergence characteristic than dual-frequency ambiguity-fixed solution. Furthermore, the biases are expressed as an unified form that gives an important and valuable reference for future research on multi-frequency and multi-system precise point positioning.
机译:多系统和多频率是确定精确点定位性能的两个关键因素。多频和多系统都会导致新的偏差,而这些偏差无法系统地解决。本文着重于偏差的数学模型,这些偏差的影响以及不同观测模型的定位性能分析。偏置包括多频中的频率间时钟偏置和多系统中的系统间时钟偏置。前者是来自接收器时钟和卫星时钟的残余差分代码偏置(DCB),通常出现在第三频率,后者是不同系统中接收器时钟误差的偏差。通过分析观测方程的通用公式,给出了偏差的统一数学模型。这些偏差的影响已通过使用相应观察模型进行的实验进行了验证。随后,这些实验基于2018年第100天的多全球导航卫星系统(GNSS)实验(MGEX)中五个全球分布站的数据,通过频率组合评估不同观测模型的定位性能(双频或三频)和系统(北斗导航卫星系统(BDS)或全球定位系统(GPS))。结果表明,三频模型的性能几乎与双频模型的性能相同。它们为三频模糊固定解决方案提供了科学支持,该解决方案具有比双频模糊固定解决方案更好的收敛特性。此外,偏差被表示为一个统一的形式,这为将来对多频率和多系统精确点定位的研究提供了重要而有价值的参考。

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