Browse > Article
http://dx.doi.org/10.11003/JPNT.2014.3.4.163

Software-based Performance Analysis of a Pseudolite Time Synchronization Method Depending on the Clock Source  

Lee, Ju Hyun (Department of Electronics Engineering, Chungnam National University)
Hwang, Soyoung (Department of Software, Catholic University of Pusan)
Yu, Dong-Hui (Department of Software, Catholic University of Pusan)
Park, Chansik (Department of Electronics Engineering, Chungbuk National University)
Lee, Sang Jeong (Department of Electronics Engineering, Chungnam National University)
Publication Information
Journal of Positioning, Navigation, and Timing / v.3, no.4, 2014 , pp. 163-170 More about this Journal
Abstract
A pseudolite is used as a GPS backup system, and is also used for the purpose of indoor navigation and correction information transmission. It is installed on the ground, and transmits signals that are similar to those of a GPS satellite. In addition, in recent years, studies on the improvement of positioning accuracy using the pseudorange measurement of a pseudolite have been performed. As for the effect of the time synchronization error between a pseudolite and a GPS satellite, a time synchronization error of 1 us generally induces a pseudorange error of 300 m; and to achieve meter-level positioning, ns-level time synchronization between a pseudolite and a GPS satellite is required. Therefore, for the operation of a pseudolite, a time synchronization algorithm between a GPS satellite and a pseudolite is essential. In this study, for the time synchronization of a pseudolite, "a pseudolite time synchronization method using the time source of UTC (KRIS)" and "a time synchronization method using a GPS timing receiver" were introduced; and the time synchronization performance depending on the pseudolite time source and reference time source was evaluated by designing a software-based pseudolite time synchronization performance evaluation simulation platform.
Keywords
time synchronization; pseudolite; GPS; clock sources;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Allan, D. W. 1987, Time and Frequency (Time-Domain) Characterization, Estimation, and Prediction of Precision Clocks and Oscillators, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control, (UFFC-34)6, 647-654. http://dx.doi.org/10.1109/T-UFFC.1987.26997   DOI
2 Arceo-Miquel, L., Shmaliy, Y. S., & Ibarra-Manzano, O. 2009, Optimal synchronization of local clocks by GPS 1PPS signals using predictive FIR filters, IEEE Transactions on Instrumentation and Measurement, 58, 1833-1840. http://dx.doi.org/10.1109/TIM.2009.2013654   DOI
3 Galleani, L., Sacerdote, L., Tavella, P., & Zucca, C. 2003, A mathematical model for the atomic clock error, Metrologia, 40, S257-S264. http://dx.doi.org/10.1088/0026-1394/40/3/305   DOI
4 Lewis, L. L. 1991, An Introduction to Frequency Standards, Proceeding of the IEEE, 79, 927-935. http://dx.doi.org/10.1109/5.84969   DOI
5 Varnum, F. B., Brown, D. R., Allan, D. W., & Peppler, T. K. 1987, Comparison of Time Scales Generated with the NBS Ensembling Algorithm, Proceedings of the Nineteenth Annual Precise Time and Time Interval (PTTI) Applications and Planning Meeting, Defense Mapping Agency, pp.13-23