Author:
Krasuski Kamil,Ćwiklak Janusz
Abstract
Purpose
The purpose of this paper is to present the problem of implementation of the differential global navigation satellite system (DGNSS) differential technique for aircraft accuracy positioning. The paper particularly focuses on identification and an analysis of the accuracy of aircraft positioning for the DGNSS measuring technique.
Design/methodology/approach
The investigation uses the DGNSS method of positioning, which is based on using the model of single code differences for global navigation satellite system (GNSS) observations. In the research experiment, the authors used single-frequency code observations in the global positioning system (GPS)/global navigation satellite system (GLONASS) system from the on-board receiver Topcon HiperPro and the reference station REF1 (reference station for the airport military EPDE in Deblin in south-eastern Poland). The geodetic Topcon HiperPro receiver was installed in Cessna 172 plane in the aviation test. The paper presents the new methodology in the DGNSS solution in air navigation. The aircraft position was estimated using a “weighted mean” scheme for differential global positioning system and differential global navigation satellite system solution, respectively. The final resultant position of aircraft was compared with precise real-time kinematic – on the fly solution.
Findings
In the investigations it was specified that the average accuracy of positioning the aircraft Cessna 172 in the geocentric coordinates XYZ equals approximately: +0.03 ÷ +0.33 m along the x-axis, −0.02 ÷ +0.14 m along the y-axis and approximately +0.02 ÷ −0.15 m along the z-axis. Moreover, the root mean square errors determining the measure of the accuracy of positioning of the Cessna 172 for the DGNSS differential technique in the geocentric coordinates XYZ, are below 1.2 m.
Research limitations/implications
In research, the data from GNSS onboard receiver and also GNSS reference receiver are needed. In addition, the pseudo-range corrections from the base stations were applied in the observation model of the DGNSS solution.
Practical implications
The presented research method can be used in a ground based augmentation system (GBAS) augmentation system, whereas the GBAS system is still not applied in Polish aviation.
Social implications
The paper is destined for people who work in the area of aviation and air transport.
Originality/value
The study presents the DGNSS differential technique as a precise method for recovery of aircraft position in civil aviation and this method can be also used in the positioning of aircraft based on GPS and GLONASS code observations.
Subject
Electrical and Electronic Engineering,Industrial and Manufacturing Engineering
Reference35 articles.
1. Ali, A.S.A. (2013), “Low-cost sensors-based attitude estimation for pedestrian navigation in GPS-denied environments”, PhD thesis, UCGE Reports Number 20387, University of Calgary, Alberta, pp. 43-46, doi: 10.5072/PRISM/26793.
2. A matlab implementation of differential GPS for low-cost GPS receivers;TransNavhe International Journal on Marine Navigation and Safety of Sea TransportatTion,2014
3. Analysis of navigational algorithms for a real time differential GPS system,2005
4. Root mean square error (RMSE) or mean absolute error (MAE)? Arguments against avoiding RMSE in the literature;Geoscientific Model Development,2014
5. Examination of autonomous GPS and GPS/EGNOS integrity and accuracy for aeronautical applications;Periodica Polytechnica Civil-Engineering,2017
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献