Multi‐constellation ARAIM exploiting satellite motion

M. Joerger, B. Pervan
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引用次数: 9

Abstract

In this work, a new time-sequential positioning and fault detection method is developed for dual-frequency, multi-constellation Advanced Receiver Autonomous Integrity Monitoring (ARAIM). Unlike conventional “snapshot” ARAIM, sequential ARAIM exploits changes in satellite geometry at the cost of slightly higher computation and memory loads. From the perspective of users on Earth, the motion of any given GNSS satellite is small over short time intervals. But the accumulated geometry variations of redundant satellites from multiple GNSS can be substantial. This paper quantifies performance benefits brought by satellite motion to ARAIM. It specifically addresses the following challenges: (a) defining raw GNSS code and carrier error models over time, (b) designing estimators and fault detectors exploiting geometric diversity for positioning, cycle ambiguity estimation, and integrity evaluation, and (c) formulating these algorithms in a computationally efficient implementation. Performance improvements provided by sequential ARAIM over snapshot ARAIM are evaluated by worldwide availability analysis for aircraft approach navigation.
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利用卫星运动的多星座ARAIM
在这项工作中,为双频、多星座高级接收机自主完整性监测(ARAIM)开发了一种新的时序定位和故障检测方法。与传统的“快照”ARAIM不同,顺序ARAIM利用卫星几何形状的变化,代价是略高的计算和内存负载。从地球用户的角度来看,任何给定的全球导航卫星系统卫星在短时间间隔内的运动都很小。但是,来自多个全球导航卫星系统的冗余卫星的累积几何变化可能是巨大的。本文量化了卫星运动给ARAIM带来的性能优势。它具体解决了以下挑战:(a)定义原始GNSS代码和随时间变化的载波误差模型,(b)设计利用几何多样性进行定位、周期模糊度估计和完整性评估的估计器和故障检测器,以及(c)以计算高效的实现方式制定这些算法。通过对飞机进近导航的全球可用性分析,评估了顺序ARAIM相对于快照ARAIM的性能改进。
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20 weeks
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