TY - JOUR
T1 - An Advanced Receiver Autonomous Integrity Monitoring (ARAIM) Ground Monitor Design to Estimate Satellite Orbits and Clocks
AU - Zhai, Yawei
AU - Patel, Jaymin
AU - Zhan, Xingqun
AU - Joerger, Mathieu
AU - Pervan, Boris
N1 - Publisher Copyright:
Copyright © The Royal Institute of Navigation 2020.
PY - 2020/9/1
Y1 - 2020/9/1
N2 - This paper describes a method to determine global navigation satellite systems (GNSS) satellite orbits and clocks for advanced receiver autonomous integrity monitoring (ARAIM). The orbit and clock estimates will be used as a reference truth to monitor signal-in-space integrity parameters of the ARAIM integrity support message (ISM). Unlike publicly available orbit and clock products, which aim to maximise estimation accuracy, a straightforward and transparent approach is employed to facilitate integrity evaluation. The proposed monitor is comprised of a worldwide network of sparsely distributed reference stations and will employ parametric satellite orbit models. Two separate analyses, covariance analysis and model fidelity evaluation, are carried out to assess the impact of measurement errors and orbit model uncertainty on the estimated orbits and clocks, respectively. The results indicate that a standard deviation of 30 cm can be achieved for the estimated orbit/clock error, which is adequate for ISM validation.
AB - This paper describes a method to determine global navigation satellite systems (GNSS) satellite orbits and clocks for advanced receiver autonomous integrity monitoring (ARAIM). The orbit and clock estimates will be used as a reference truth to monitor signal-in-space integrity parameters of the ARAIM integrity support message (ISM). Unlike publicly available orbit and clock products, which aim to maximise estimation accuracy, a straightforward and transparent approach is employed to facilitate integrity evaluation. The proposed monitor is comprised of a worldwide network of sparsely distributed reference stations and will employ parametric satellite orbit models. Two separate analyses, covariance analysis and model fidelity evaluation, are carried out to assess the impact of measurement errors and orbit model uncertainty on the estimated orbits and clocks, respectively. The results indicate that a standard deviation of 30 cm can be achieved for the estimated orbit/clock error, which is adequate for ISM validation.
KW - Advanced Receiver Autonomous Integrity Monitoring (ARAIM)
KW - Integrity Support Message (ISM) Validation
KW - Offline Monitor
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U2 - 10.1017/S0373463320000181
DO - 10.1017/S0373463320000181
M3 - Article
AN - SCOPUS:85084411730
SN - 0373-4633
VL - 73
SP - 1087
EP - 1105
JO - Journal of Navigation
JF - Journal of Navigation
IS - 5
ER -