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위성항법시스템 서비스 및 신호 현황

Status of Navigation Satellite System Services and Signals

  • 한가희 (위성항법연구실 ) ;
  • 방유진 (위성항법연구실) ;
  • 임형수 (위성항법연구실 ) ;
  • 이상욱 (위성항법연구실 ) ;
  • 박승근 (전파연구본부 )
  • K. Han ;
  • E. Bang ;
  • H. Lim ;
  • S. Lee ;
  • S. Park
  • 발행 : 2023.04.01

초록

Positioning, navigation, and timing information has become a key element in the national core infrastructure and for emerging technologies, such as autonomous driving, lunar exploration, financial systems, and drones. Therefore, the provision of that information by navigation satellite systems is becoming increasingly important. Existing systems such as GPS (Global Positioning System), GLONASS (GLObal NAvigation Satellite System), and BDS (BeiDou Navigation Satellite System) also provide augmentation, safety-of-life, search & rescue and short message communication and authentication services to increase their competitiveness. Those services and the signals generated for their provision have their own purpose and requirements. This article presents an overview of existing or planned satellite navigation satellite system services and signals, aiming to help understand their current status.

키워드

과제정보

본 논문은 2023년도 한국전자통신연구원 연구운영비 지원사업의 재원으로 수행된 연구결과임[23ZH1100, 연결의 한계를 극복하는 초연결 입체통신 기술 연구].

참고문헌

  1. https://www.gps.gov/systems/gps/space/#generations 
  2. Maintenance, Development and Use of GLONASS for the Period 2012-2020. 
  3. J. Benedicto and R. Costa, Directions 2021: Galileo expands and modernizes global PNT, https://www.gpsworld.com/directions-2021-galileo-expands-and-modernizes-global-pnt/ 
  4. Development of the BeiDou Navigation Satellite System (ver. 3.0), 2018. 
  5. Kenji NUMATA, QZSS Status Update, International Committee on GNSS (ICG) 16th meeting, Oct. 2022. 
  6. ISRO, Satellite Navigation Services, https://www.isro.gov.in/SatelliteNavigationServices.html 
  7. https://www.msit.go.kr/bbs/view.do?sCode=eng&mId=4&mPid=2&bbsSeqNo=42&nttSeqNo=568 
  8. I. Revnivykh, "GLONASS status and prospects of development," in Proc. Int. Comm. Glob. Navig. Satellite Syst. (ICG-16), (Abu Dhabi, United Arab Emirates), Oct. 2022. 
  9. https://www.gsc-europa.eu/galileo/services/galileo-open-service-navigation-message-authentication-osnma 
  10. J. Hinks et al., "Signal and data authentication experiments on NTS-3," in Proc. ION GNSS+ 2021, (St. Louis, MO, USA), Sept. 2021, pp. 3621-3641. 
  11. Y.J. Morton et al., Position, Navigation, and Timing Technologies in the 21st Century: Integrated Satellite Navigation, Sensor Systems, and Civil Applications, vol. 1, Wiley. Hoboken, NJ, USA, 2020. 
  12. IS-GPS-200, Revision N, Aug. 2022. 
  13. IS-GPS-705, Revision J, Aug. 2022. 
  14. IS-GPS-800, Revision J, Aug. 2022. 
  15. B.B. Barker et al., "Overview of the GPS M code signal," in Proc. ION NTM, (Anaheim, CA, USA), Jan. 2000, pp. 542-549. 
  16. https://www.gps.gov/systems/gps/modernization/civilsignals/ 
  17. B.A. Stein et al., "PRN codes for GPS/GLONASS: A comparison," in Proc. ION NTM, (San Diego, CA, USA), Jan. 1990, pp. 31-35. 
  18. https://gssc.esa.int/navipedia/index.php/CDMA_FDMA_Techniques 
  19. P.J. Teunissen et al., Springer Handbook of Global Navigation Satellite Systems, Springer, Cham, Switzerland, 2017. 
  20. Y. Urlichich et al., "GLONASS developing strategy," in Proc. ION GNSS 2010, (Portland, OR, USA), Sept. 2010, pp. 1566-1571. 
  21. ICD GLONASS CDMA L1, Edition 1.0, 2016. 
  22. ICD GLONASS CDMA L2, Edition 1.0, 2016. 
  23. S. Karutin, "GLONASS signals and augmentations," in Proc. ION GNSS 2012, (Nashville, TN, USA), Sept. 2012, pp. 3878-3911. 
  24. ICD GLONASS CDMA L3, Edition 1.0, 2016. 
  25. https://gssc.esa.int/navipedia/index.php/ GLONASS_Signal_Plan 
  26. https://space.skyrocket.de/doc_sdat/uragan-k2.htm 
  27. B. Eissfeller et al., "Requirements on the Galileo signal structure," in Proc. ION GPS 2000, (Salt Lake City, UT, USA), Sept. 2000, pp. 1772-1781. 
  28. E6-B/C Codes Technical Note, no. 1, Jan. 2019. 
  29. OS SIS ICD, no. 2.0, Jan. 2021. 
  30. J.-A. Avila-Rodriguez et al., "The MBOC modulation: The final touch to the Galileo frequency and signal plan," Navigation, vol. 55, 2008, pp. 15-28.  https://doi.org/10.1002/j.2161-4296.2008.tb00415.x
  31. https://www.gsc-europa.eu/galileo/services 
  32. G.W. Hein et al., "Status of Galileo frequency and signal design," in Proc. ION GPS 2002, (Portland, OR, USA), Sept. 2002, pp. 266-277. 
  33. https://www.euspa.europa.eu/newsroom/news/galileo-commercial-service-implementing-decision-enters-force 
  34. J. Godet, "Galileo status," Munich Satellite Navig. Summit 2022, Mar. 2022. 
  35. BDS-SIS-ICD-B2b, ver. 1.0, Jul. 2020. 
  36. ITU-R M.1787-4, International Telecommunications Union, Geneva, Switzerland, Jan. 2022. 
  37. CSNO, "Development of the BeiDou navigation satellite system," ver. 4.0, Dec. 2019. 
  38. BDS-SIS-ICD, ver. 2.1, Nov. 2016. 
  39. http://csno-tarc.cn/en/system/constellation 
  40. M. Lu et al., "Overview of BDS III new signals," Navigation, vol. 66, 2018, pp. 19-35.  https://doi.org/10.1002/navi.296
  41. CSNO, The Application Service Architecture of BeiDou Navigation Satellite System, ver. 1.0, Dec. 2019. 
  42. S. Kogure, "Update of QZSS," in Proc. ION GNSS+ 2021 (St. Louis, MO, USA), Sept. 2021, pp. 1228-1240. 
  43. https://www.icao.int/Meetings/anconf13/Documents/WP/wp_249_en.pdf 
  44. ISRO-IRNSS-ICD-SPS-L1, ver. 1.0(draft), Oct. 2022. 
  45. https://en.wikipedia.org/wiki/Indian_Regional_Navigation_Satellite_System 
  46. ISRO-IRNSS-ICD-MSG-INCOIS, ver. 1.2, June 2020. 
  47. D. Upadhyay and V.S. Bhadouria, "Overview of new NavIC L1 SPS signal structure & SBOC modulation and modified-CEMIC multiplexing scheme," in Proc. Int. Comm. Glob. Navig. Satellite Syst. (ICG-15), (Vienna, Austria), Sept. 2021.