Browse > Article
http://dx.doi.org/10.11003/JPNT.2016.5.4.213

Test Results of WADGPS System using Satellite-based Ionospheric Delay Model for Improving Positioning Accuracy  

So, Hyoungmin (Agency for Defense Development)
Jang, Jaegyu (Agency for Defense Development)
Lee, Kihoon (Agency for Defense Development)
Song, Kiwon (Agency for Defense Development)
Park, Junpyo (Agency for Defense Development)
Publication Information
Journal of Positioning, Navigation, and Timing / v.5, no.4, 2016 , pp. 213-219 More about this Journal
Abstract
Most existing studies on the wide-area differential global positioning system (WADGPS) employed a grid ionosphere model for error correction in the ionospheric delay. The present study discusses the application of satellite-based ionospheric delay model that provides an error model as a plane function with regard to individual satellites in order to improve accuracy in the WADGPS. The satellite-based ionospheric delay model was developed by Stanford University in the USA. In the present study, the algorithm in the model is applied to the WADGPS system and experimental results using measurements in the Korean Peninsula are presented. Around 1 m horizontal accuracy was exhibited in the existing planar fit grid model but when the satellite-based model was applied, correction performance within 1 m was verified.
Keywords
ionospheric delay model; DGPS; WADGPS; SBAS;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 Chao, Y.-C. 1997, Real Time Implementation of the Wide Area Augmentation System for the Global Positioning System with an Emphasis on Ionospheric Modeling, Ph.D. Dissertation, Stanford University
2 Kaplan, E. D. & Hegarty, C. J. 2006, Understanding GPS: Principles and Applications. 2nd ed. (Boston: Artech House)
3 Kee, C. 2014, Lectures on SBAS System Design, Lecture Notes of GNSS Laboratory in Seoul National University
4 Kim, D. 2007, A study on correction generation algorithms for wide area differential GNSS, Ph.D. Dissertation, Seoul National University
5 Park, B. 2015, A study on WADGPS message structure and design, Internal report, Sejong University
6 RTCA Special Committee 159 Working Group 2 2001, Minimum Operational Performance Standards for Global Positioning System/Wide Area Augmentation System Airborne Equipment, Radio Technical Commission for Aeronautics Document Number DO-229C
7 So, H., Jang, J., Lee, K., Park, J., & Song, K. 2016, Performance analysis of WADGPS system for improving positioning accuracy, Journal of Positioning, Navigation, and Timing, 5, 21-28. http://dx.doi.org/10.11003/JPNT.2016.5.1.021   DOI
8 Stanford University 2015, A study on GNSS ionospheric delay estimation for extending the coverage of WADGPS, Internal report, Stanford University
9 Tsai, Y.-J. 1999, Wide Area Differential Operation of the Global Positioning System : Ephemeris and Clock Algorithms, Ph.D. Dissertation, Stanford University
10 Yun, H., Kee, C.-D., & Kim, D.-Y. 2011, Korean Wide Area Differential Global Positioning System Development Status and Preliminary Test Results, International Journal of Aeronautical & Space Science, 12, 274-282. http://dx.doi.org/10.5139/IJASS.2011.12.3.274   DOI
11 Blanch, J. 2003, Using Kriging to bound satellite ranging errors due to the ionosphere, Ph.D. Dissertation, Stanford University