Position, Navigation, and Timing Technologies in the 21st Century. Группа авторов. Читать онлайн. Newlib. NEWLIB.NET

Автор: Группа авторов
Издательство: John Wiley & Sons Limited
Серия:
Жанр произведения: Физика
Год издания: 0
isbn: 9781119458517
Скачать книгу
phase tracking of OFDM‐based DVB‐T signals for precision ranging,” ION GNSS+ 2017, Portland, Oregon, September 2017.

      63 63 Association of Radio Industries and Businesses (ARIB), Transmission System for Digital Terrestrial Broadcasting, STD‐B31, V1.6E2, November 2005.

      64 64 J.J. Spilker, Jr. and M. Rabinowitz, Position location using Integrated Service Digital Broadcasting‐Terrestrial (ISDB‐T) broadcast television signals, Pat. No. US 6,952,182, October 4, 2005.

      65 65 CNS, Standardization Administration of the People’s Republic of China, Framing Structure, Channel Coding and Modulation for Digital Television Terrestrial Broadcasting System, Chinese National Standard GB20600 (http://sac.gov.cn), 2006.

      66 66 R. Karamchedu, “Does China have the best digital television standard on the planet?” IEEE Spectrum, May 2009.

      67 67 M. Liu, M. Crussiere, J.F. Helard, and O.P. Pasquero, “Analysis and performance comparison of DVB‐T and DTMB systems for terrestrial digital TV,” Proceedings of the 11th IEEE International Conference on Communications Systems, Guangzhou, China, November 2008, 1399–1404.

      68 68 S. Tang, K. Peng, K. Gong, J. Song, C. Pan, and Z. Yang, “Robust frame synchronization for Chinese DTTB system,” IEEE Transactions on Broadcasting, Vol. 54, No. 1, 152–158, March 2008.

      69 69 J. Wang, Z. Yang, C. Pan, and L. Yang, “A combined code acquisition and symbol timing recovery method for TDS‐OFDM,” IEEE Transactions on Broadcasting, Vol. 49, No. 3, 304–308, September 2003.

      70 70 F. Yang, K. Peng, J. Song, C. Pan, and Z. Yang, “Guard‐interval mode detection method for Chinese DTTB system,” Workshop Proceedings of IEEE International Conference on Communications, Circuits, and Systems, 2008, 216–219.

      71 71 F. Yang, J. Wang, J. Wang, J. Song, and Z. Yang, “Channel estimation for the Chinese DTTB System based on a novel iterative PN sequence reconstruction,” Workshop Proceedings of IEEE International Conference on Communications, 2008, 286–289.

      72 72 G. Liu and S.V. Zhidkov, “A composite PN‐correlation based synchronizer for TDS‐OFDM receiver,” IEEE Transactions on Broadcasting, Vol. 56, No. 1, 77–85, December 2010.

      73 73 M. Liu, M. Crussiere, and J.F. Helard, “Improved channel estimation methods based on PN sequence for TDS‐OFDM,” International Conference on Telecommunications, 2012.

      74 74 F. Gong, J. Ge, and Y. Wang, “Multi‐GI Detector with shortened and leakage correlation for the Chinese DTMB system,” IEEE Transactions on Consumer Electronics, Vol. 55, No. 4, 1788–1792, November 2009.

      75 75 Z.W. Zheng, “Improved frame head mode detection and symbol detection scheme for Chinese TDS‐OFDM‐Based DTTB systems,” Proceedings of the 2nd IEEE Int. Conf. on Information Management and Engineering, Chengdu, April 2010, 27–30.

      76 76 Q. Li and S. Chen, Method and apparatus for code acquisition, Patent No. US 8,693,606, April 2014.

      77 77 W. Li, H. Wu, D. Ucci, and Y. Morton, “A positioning system using Chinese digital TV signals under limited GPS signal observability conditions in urban environment,” ION 2010 Int. Technical Meeting, January 2010, San Diego, CA, 264–269.

      78 78 X. Ji, Y. Zhang, J. Wang, and L. Dai, “Time‐frequency joint positioning for Chinese digital television terrestrial broadcasting system,” 12th IEEE Int. Conf. on Communication Technology, Nanjing, November 2010, 950–953.

      79 79 L. Dai, Z. Wang, C. Pan, and S. Chen, “Wireless positioning using TDS‐OFDM signals in single frequency networks,” IEEE Transactions on Broadcasting, Vol. 58. No. 2, 236–246, June 2012.

      80 80 ATSC Standard: A/321, System discovery and signaling, Doc. A/321: 2016, 23 March 2016.

      81 81 ATSC standard: A/322, Physical layer protocol, Doc. A/322: 2020, 23 January 2020.

      82 82 E.J. Dalabakis and H.D. Shearer, Navigation system utilizing plural commercial broadcast transmissions, Patent US No. 3,747,106, 17 July 1973.

      83 83 B. Skalar, “Rayleigh fading channels in mobile digital communication systems Part I: characterization,” IEEE Communications Magazine, July 1997.

      84 84 J.Y. Do, Road to seamless positioning: Hybrid positioning system combining GPS and television, PhD dissertation, Stanford University, May 2008.

      85 85 C. Yang, M. Miller, E. Blasch, and T. Nguyen, “Proactive radio navigation and target tracking,” ION GNSS’2009, Savannah, Georgia, September 2009.

      86 86 J.A. McEllroy, Navigation using signals of opportunity in the AM transmission band, AFIT Master Thesis, September 2006.

      87 87 S.H. Fang, J.C. Chen, H.R. Huang, and T.N. Lin, “Metropolitan‐scale location estimation using FM radio with analysis of measurements,” Wireless Communications and Mobile Computing Conference, IWCMC’08, 6–8 Aug. 2008, 171–176.

      88 88 T.D. Hall, C. C. Counselman, and P. Misra. “Instantaneous radiolocation using AM broadcast signals,” Proceedings of ION‐NTM, Long Beach, California, January 2001, 93–99.

      89 89 A. Matic, A. Popleteev, V. Osmani, and O. Mayora‐Ibarra, “FM radio for indoor localization with spontaneous recalibration,” Pervasive and Mobile Computing, 6, 642–656, 2010.

      90 90 J.J. Caffery, Jr. and G.L. Stuber, “Overview of radiolocation in CDMA cellular systems,” IEEE Communications Magazine, April 1998.

      91 91 C. Yang and A. Soloviev, “Relative navigation with displacement measurements and its absolute correction,” ION GNSS+ 2013, Nashville, Tennessee, 16–20 September 2013.

      92 92 T.J. Ford and J. Hamilton, “A new positioning filter: Phase smoothing in the position domain,” Navigation, Journal of The Institute of Navigation, Vol. 50, No. 2, 65–78, Summer 2003.

      93 93 J. Wendel, O. Meister, R. Monikes, and G.F. Trommer, “Time‐differenced carrier phase measurements for tightly coupled GPS/INS integration,” Proceedings of IEEE/ION PLANS 2006, San Diego, California, April 2006, 54–60.

      94 94 L. Chen, R. Piche, H. Kuusniemi, and R. Chen, “Adaptive mobile tracking in unknown non‐line‐of‐sight conditions with application to digital TV networks,” EURASIP Journal on Advances in Signal Processing 2014, 2014:22.

      95 95 J.W. Cheong, E. Glennon, A.G. Dempster, D. Serant, and T. Calmettes, “Modelling and mitigating multipath and NLOS for cooperative positioning in urban canyons,” International Global Navigation Satellite Systems Society IGNSS Symposium 2015, Outrigger Gold Coast, Australia 14–16 July, 2015.

      96 96 A. Carosio, A. Cina, and M. Piras, “The Robust statistics method applied to the Kalman filter: Theory and application,” Proceedings of ION GNSS, 2005, Long Beach, California, September 2005.

      97 97 U. Hammes, E. Wolsztynski, and A.M. Zoubir, “Robust tracking and geolocation for wireless networks in NLOS environments,” IEEE Journal of Selected Topics in Signal Processing, Vol. 3, No. 5, October 2000.

      98 98 T. Perala and R. Piche, “Robust extended Kalman filter in hybrid positioning applications,” Proceedings of 4th Workshop on Positioning, Navigation, and Communications, Hannover, Germany, 2007.

      99 99 K.D. Wesson, K.M. Pesyna, Jr., J.A. Bhatti, and T.E. Humphreys, “Opportunistic frequency stability transfer for extending the coherence time of GNSS receiver clocks,” Proceedings of ION GNSS’ 2010, Portland, Oregon, September 2010.

      100 100 S. Meiyappan, A. Raghupathy, and G. Pattabiraman, “Chapter 39: Navigation with Dedicated Metropolitan Beacon Systems,” in Position, Navigation, and Timing Technologies in the 21st Century: Integrated Satellite Navigation, Sensor Systems, and Civil Applications, Y.T.J. Morton, F. van Diggelen, J.J. Spilker, Jr., and B.W. Parkinson (Eds.), Wiley, 2020.

      Конец ознакомительного фрагмента.

      Текст предоставлен ООО «ЛитРес».

      Прочитайте