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Galileo Single Frequency Ionospheric Correction: Performances in Terms of Position

机译:伽利略单频电离层校正:位置方面的性能

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摘要

For GPS single frequency users, the ionospheric contribution to the error budget is estimated by the well-known Klobuchar algorithm. For Galileo, it will be mitigated by a global algorithm based on the NeQuick model. This algorithm relies on the adaptation of the model to slant Total Electron Content (sTEC) measurements. Although the performance specifications of these algorithms are expressed in terms of delay and TEC, the users might be more interested in their impact on positioning. Therefore, we assessed the ability of the algorithms to improve the positioning accuracy using globally distributed permanent stations for the year 2002 marked by a high level of solar activity. We present uncorrected and corrected performances, interpret these and identify potential causes for Galileo correction discrepancies. We show vertical errors dropping by 56–64 % due to the analyzed ionospheric corrections, but horizontal errors decreasing by 27 % at most. By means of a fictitious symmetric satellite distribution, we highlight the role of TEC gradients in residual errors. We describe mechanisms permitted by the Galileo correction, which combine sTEC adaptation and topside mismodeling, and limit the horizontal accuracy. Hence, we support further investigation of potential alternative ionospheric corrections. We also provide an interesting insight into the ionospheric effects possibly experienced during the next solar maximum coinciding with Galileo Initial Operation Capability.
机译:对于GPS单频用户,电离层对误差预算的贡献是通过众所周知的Klobuchar算法估算的。对于Galileo,将通过基于NeQuick模型的全局算法来缓解这种情况。该算法依赖于模型对倾斜的总电子含量(sTEC)测量的适应性。尽管这些算法的性能规范是用延迟和TEC表示的,但用户可能会对它们对定位的影响更感兴趣。因此,我们评估了2002年以太阳活动高水平为标志的,使用全球分布的常设台站的算法提高定位精度的能力。我们介绍了未校正和校正的性能,解释了这些性能,并确定了伽利略校正差异的潜在原因。由于电离层校正的分析,垂直误差降低了56–64%,但是水平误差最多降低了27%。通过虚拟的对称卫星分布,我们强调了TEC梯度在残留误差中的作用。我们描述了伽利略校正允许的机制,该机制结合了sTEC适应和顶面模型错误,并限制了水平精度。因此,我们支持进一步研究潜在的替代电离层校正。我们还提供了有趣的洞察力,可了解下一次太阳最大爆发期间与伽利略初始作战能力相吻合的电离层效应。

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