Virtual differential GPS based on SBAS signal

被引:12
作者
Chen, RZ [1 ]
Li, XY [1 ]
机构
[1] Finnish Geodet Inst, Masala 2431, Finland
关键词
Geostationary Earth Orbit; Geostationary Earth Orbit Satellite; Ionospheric Correction; Mobile Client; Pierce Point;
D O I
10.1007/s10291-004-0114-6
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
In order to access the satellite-based augmentation system (SBAS) service, the end user needs access to the corresponding geostationary earth orbit (GEO) satellites that broadcast the augmentation information for the region. This is normally not a problem for aviation and maritime applications, because an open sky is typically available for such applications. However, it is difficult to access the GEO satellites directly at high latitudes for land applications because of the low elevation angles to the GEO satellites (e.g., 4-22 degrees in Finland to the European geostationary navigation overlay services [EGNOS] GEO satellites). Results from a driving test of 6,100 km in Finland show that the EGNOS GEO satellites can be accessed in only 51.8% of the driving routes. Furthermore, it is also difficult to access the GEO satellites from city canyons, because the high buildings block the GEO signals. This article presents a solution to solve this problem by creating virtual differential GPS (DGPS) reference stations using the SBAS signal in space (SIS). The basic concept is to convert the SBAS signal to Radio Technical Commission for Maritime Services (RTCM) signals, and broadcast the converted RTCM signals over the wireless Internet using the Internet radio technology. Therefore, access to the SBAS service will not be limited by low elevation angles to the GEO satellites because the converted RTCM data streams are disseminated over the wireless Internet. Furthermore, the SBAS service can then be accessed via a legacy DGPS receiver. Two test cases have been carried out with the prototype system developed by the Finnish Geodetic Institute. The test results showed that the positioning accuracy of the virtual DGPS solution was about 1-2 m at 95%, which was similar to that of the standard WAAS/EGNOS solution. The positioning accuracy was not degraded, compared to that of the standard wide area augmentation system - European geostationary navigation overlay services (WAAS/EGNOS) solution, as long as the distance between the rover receiver and the virtual DGPS reference station was less than 150 km. A preliminary driving test of 400 km carried out in southern Finland showed that the availability of the virtual DGPS solutions was 98.6% along the driving route.
引用
收藏
页码:238 / 244
页数:7
相关论文
共 16 条
  • [1] BOCK Y, 2003, P ION GPS 2003 PORTL, P1397
  • [2] CHEN R, 2004, P GNSS 2004 C ROTT 1
  • [3] CHEN R, 2003, P ION GPS 2003 PORTL, P2828
  • [4] Chen X, 2000, P 13 INT TECH M SAT, P9
  • [5] Ubiquitous mobile computing
    Chen, YFR
    Petrie, C
    [J]. IEEE INTERNET COMPUTING, 2003, 7 (02) : 16 - 17
  • [6] Comp C, 1998, P ION GPS 1998, P177
  • [7] *FED AV ADM US DEP, 1999, FAAE2892B US DEP TRA
  • [8] Internet-Based Real-Time Kinematic Positioning
    Gao, Y.
    Liu, Z.
    Liu, Z. Z.
    [J]. GPS SOLUTIONS, 2002, 5 (03) : 61 - 69
  • [9] An experimental performance analysis of real-time kinematic positioning with NASA's Internet-Based Global Differential GPS
    Kechine, MO
    Tiberius, CCJM
    van der Marel, H
    [J]. GPS SOLUTIONS, 2004, 8 (01) : 9 - 22
  • [10] Lee Y, 2000, P ION GPS 2000 SALT, P586