Journal Article

·2009 OPEN ACCESS

Effect of stochastic ionospheric delay modeling for GPS ambiguity resolution

Chang‐Ki Hong , Dorota A. Grejner‐Brzezinska , Jay Hyoun Kwon , Niyazi Arslan YTU

Earth Planets and Space

Abstract

Abstract The network-derived ionospheric delay can improve the fast and accurate determination of the long baseline in both the rapid-static and kinematic Global Positioning System (GPS) positioning mode. In this study, an interpolation of the undifferenced (UD) ionospheric delays is performed on a satellite-by-satellite and epoch-by-epoch basis, respectively, using the least-squares collocation (LSC) to provide not only ionospheric delays but also their variances. The developed method retains the simplicity of the two-dimensional (2-D) model, but it does not introduce errors due to the thin-shell assumption made in the single-layered model. Our method also provides flexibility in forming the predicted double-differenced (DD) ionospheric delays. Faster and more reliable positioning solutions can be obtained when the developed method is used to predict DD ionospheric delays. The numerical test applying the method to the Ohio Continuously Operating Reference Station network shows a 23% improvement in mean time-to-fix with the network-derived ionospheric delays.

Keywords

Global Positioning System Ambiguity resolution Collocation (remote sensing) Computer science Epoch (astronomy) Ionosphere Interpolation (computer graphics) Geodesy Satellite Algorithm Geology GNSS applications Telecommunications Engineering Aerospace engineering

Subject Areas

GNSS positioning and interference ·Aerospace Engineering ·Physical Sciences
Advanced Frequency and Time Standards ·Atomic and Molecular Physics, and Optics ·Physical Sciences
Ionosphere and magnetosphere dynamics ·Astronomy and Astrophysics ·Physical Sciences

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