Title :
Detection and Mitigation of Reference Receiver Faults in Differential Carrier Phase Navigation Systems
Author :
Khanafseh, Samer ; Pervan, Boris
Author_Institution :
Illinois Inst. of Technol., Chicago, IL, USA
fDate :
10/1/2011 12:00:00 AM
Abstract :
In this paper, a methodology is developed to evaluate differential carrier phase navigation architectures subject to reference receiver faults. Carrier phase measurements can be used to provide high accuracy estimates of a user´s position. But in applications that involve safety-of-life, such as in precision approach for autonomous shipboard landing, integrity also plays a critical role. One source of integrity risk is the potential for GPS reference receiver failure. Integrity risk in these situations is typically mitigated by equipping the reference station with redundant receivers. However, various approaches to utilize redundant carrier phase measurements from multiple reference receivers are possible. In this paper, we describe two new methods: an averaging approach where different position solutions are averaged in the position domain, and a coupled estimation approach where the measurements from all reference receivers are coupled in the range domain and used to estimate a unified position solution. Furthermore, we investigate the impact of using these methods on accuracy and integrity from several perspectives, including availability performance, cycle resolution capabilities, implementation complexity, and computational efficiency.
Keywords :
Global Positioning System; safety; telecommunication network reliability; GPS reference receiver failure; availability performance; averaging approach; carrier phase measurements; computational efficiency; coupled estimation approach; cycle resolution capabilities; differential carrier phase navigation systems; implementation complexity; integrity risk; position domain; range domain; reference receiver fault detection; reference receiver fault mitigation; reference station; safety-of-life; user position estimation; Accuracy; Aircraft navigation; Monitoring; Navigation; Phase measurement; Position measurement; Receivers;
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on
DOI :
10.1109/TAES.2011.6034640