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Position, Navigation, and Timing Technologies in the 21st Century
Integrated Satellite Navigation, Sensor Systems, and Civil Applications, Volume 1
Y. Jade Morton (Edited by), J Morton (Author), Frank van Diggelen (Edited by), James J. Spilker, Jr. (Edited by), Bradford W. Parkinson (Edited by), Sherman Lo (Associate editor), Sherman Lo (Editorial board member), Grace Gao (Associate editor), Grace Gao (Editorial board member)
9781119458418, Wiley
Hardback, published 9 February 2021
1168 pages
28.2 x 21.8 x 5.3 cm, 2.336 kg
"A new tome — make that two new tomes — join the bookshelf of essential and authoritative references for GNSS users, while widening the umbrella a good deal to cover all PNT technologies, their sensors and their integrations. Edited by four leading lights of the community and assistant-edited by two more, its list of authors rounds up another 131 of the 'usual suspects,' the names that are seen repeatedly in the presentations at technical conference and on their organizing boards. In every one of 64 subject matters, the author(s) is/are recognized experts, in many cases the recognized expert, on the material."
—Alan Cameron, Inside GNSS
Covers the latest developments in PNT technologies, including integrated satellite navigation, sensor systems, and civil applications Featuring sixty-four chapters that are divided into six parts, this two-volume work provides comprehensive coverage of the state-of-the-art in satellite-based position, navigation, and timing (PNT) technologies and civilian applications. It also examines alternative navigation technologies based on other signals-of-opportunity and sensors and offers a comprehensive treatment on integrated PNT systems for consumer and commercial applications. Volume 1 of Position, Navigation, and Timing Technologies in the 21st Century: Integrated Satellite Navigation, Sensor Systems, and Civil Applications contains three parts and focuses on the satellite navigation systems, technologies, and engineering and scientific applications. It starts with a historical perspective of GPS development and other related PNT development. Current global and regional navigation satellite systems (GNSS and RNSS), their inter-operability, signal quality monitoring, satellite orbit and time synchronization, and ground- and satellite-based augmentation systems are examined. Recent progresses in satellite navigation receiver technologies and challenges for operations in multipath-rich urban environment, in handling spoofing and interference, and in ensuring PNT integrity are addressed. A section on satellite navigation for engineering and scientific applications finishes off the volume. Volume 2 of Position, Navigation, and Timing Technologies in the 21st Century: Integrated Satellite Navigation, Sensor Systems, and Civil Applications consists of three parts and addresses PNT using alternative signals and sensors and integrated PNT technologies for consumer and commercial applications. It looks at PNT using various radio signals-of-opportunity, atomic clock, optical, laser, magnetic field, celestial, MEMS and inertial sensors, as well as the concept of navigation from Low-Earth Orbiting (LEO) satellites. GNSS-INS integration, neuroscience of navigation, and animal navigation are also covered. The volume finishes off with a collection of work on contemporary PNT applications such as survey and mobile mapping, precision agriculture, wearable systems, automated driving, train control, commercial unmanned aircraft systems, aviation, and navigation in the unique Arctic environment. In addition, this text: Position, Navigation, and Timing Technologies in the 21st Century: Integrated Satellite Navigation, Sensor Systems, and Civil Applications will appeal to all industry professionals, researchers, and academics involved with the science, engineering, and applications of position, navigation, and timing technologies.
pnt21book.com
Part A: Satellite Navigation Systems 1. Introduction, Early History, and Assuring PNT (PTA) 2. Fundamentals of Satellite-Based Navigation and Timing 3. The Navstar Global Positioning System 4. GLONASS 5. Galileo 6. Beidou Navigation Satellite System 7. The India Regional Navigation Satellite System 8. Quasi-Zenith Satellite System 9. GNSS Interoperability: Purpose, Process, Progress, and Myths 10. Signal Quality Monitoring 11. GNSS Orbit Determination and Time Synchronization 12. Ground-Based Augmentation Systems for Aviation Applications 13. Satellite-Based Augmentation Systems Part B: Satellite Navigation Technologies 14. GNSS Receivers: An Overview 15. GNSS Receiver Signal Tracking 16. Vector Processing 17. Assisted GNSS 18. High Sensitivity GNSS 19. Relative Positioning and RTK 20. GNSS Precise Point Positioning 21. Direction Position Estimation 22. Robust Positioning in the Presence of Multipath and NLOS GNSS Signals 23. GNSS Integrity 24. Interference, Security, and Proof of Location 25. Civilian GNSS Spoofing, Detection, and Recovery 26. GNSS Antenna and Antenna Array Signal Processing Part C: Satellite Navigation for Engineering and Scientific Applications 27. Global Geodesy and Reference Frames 28. GNSS Geodesy in Geophysics, Natural Hazards, Climate, and the Environment 29. Distributed Time and Frequency Information 30. GNSS for Neutral Atmosphere and Severe Weather Monitoring 31. Ionospheric Effects, Monitoring, and Mitigation Techniques 32. GNSS Ionosphere Observations for Monitoring and Forecasting Hazardous Events 33. GNSS Radio Occultation 34. GNSS Reflectometry for Earth Remote Sensing
Bradford W. Parkinson, Stanford University, US
Y. T. Jade Morton, University of Colorado Boulder, US
Frank van Diggelen, Google, US
James J. Spilker Jr., Stanford University, US
John W. Betz, the Mitre Corporation, US
John W. Betz, the Mitre Corporation, US
Sergey Karutin, PNT Center, Russia
N. Testoedov, PNT Center, Russia
A. Tyulin, PNT Center, Russia
Alexei Bolkunov, PNT Center, Russia
José Ángel Ávila Rodríguez, European Space Agency, the Netherlands
Jörg Hahn, European Space Agency, the Netherlands
Miguel Manteiga Bautista, European Space Agency, the Netherlands
Eric Châtre, European Commission, Belgium
Mingquan Lu, Tsinghua University, China
Zheng Yao, Tsinghua University, China
Vyasaraj Rao, Accord Software and Systems, India
Satoshi Kogure, National Space Policy Secretariat, Japan
Yasuhiko Kawazu, National Space Policy Secretariat, Japan
Takeyasu Sakai, National Institute of Maritime, Port, and Aviation Technology, Japan
Thomas A. Stansell, Jr., Stansell Consulting, US
Frank van Graas, Ohio University, US
Sabrina Ugazio, Ohio University, US
Oliver Montenbruck, German Aerospace Center, Germany
Peter Steigenberger, German Aerospace Center, Germany
Boris Pervan, Illinois Institute of Technology, US
Todd Walter, Stanford University, US
Sanjeev Gunawardena, Air Force Institute of Technology, US
Y. T. Jade Morton, University of Colorado Boulder, US
Y. T. Jade Morton, University of Colorado Boulder, US
Rong Yang, Shanghai Jiaotong University, China
Brian Breitsch, University of Colorado Boulder, US
Matthew V. Lashley, Auburn University, US
Scott Martin, Georgia Tech Research Institute, US
James Sennott, Tracking and Imaging Systems, US
Frank van Diggelen, Google, US
Frank van Diggelen, Google, US
Sunil Bisnath, York University, Canada
Peter Teunissen, Curtin University, Australia
Pau Closas, Northeastern University, US
Grace Gao, Stanford University, US
Gary A. McGraw, Rockwell Collins, US
Paul D. Groves, University College London, UK
Benjamin W. Ashman, National Aeronautics and Space Administration, US
Sam Pullen, Stanford University, US
Mathieu Joerger, Virginia Tech, US
Logan Scott, Logan Scott Consulting, US
Mark Psiaki, Virginia Tech, US
Todd Humphreys, University of Texas Austin, US
Andrew O’Brien, the Ohio State University, US
Chi-Chih Chen, the Ohio State University, US
Inder J. Gupta, the Ohio State University, US
Chris Rizos, University of New South Wales, Australia
Zuheir Altamimi, Institut National de l'Information Géographique et Forestière, France
Gary Johnson, Geoscience Australia, Australia
Yehuda Bock, Scripps Institution of Oceanography, US
Shimon Wdowinski, Florida International University, US
Juda Levine, National Institute of Standard and Technology, US
Hugues Brenot, Royal Belgian Institute for Space Aeronomy, Belgium
Y. T. Jade Morton, University of Colorado Boulder, US
Brian Breitsch, University of Colorado Boulder, US
Zhe Yang, University of Colorado Boulder, US
Harrison Bourne, University of Colorado Boulder, US
Dongyang Xu, University of Colorado Boulder, US
Charles Rino, University of Colorado Boulder, US
Panagiotis Vergados, Jet Propulsion Laboratory, US
Attila Komjathy, Jet Propulsion Laboratory, US
Xing Meng, Jet Propulsion Laboratory, US
Anthony Mannucci, Jet Propulsion Laboratory, US
Chi O. Ao, Jet Propulsion Laboratory, US
Walter Williamson, Jet Propulsion Laboratory, US
James Garrison, Purdue University, US
Valery U. Zavorotny, University of Colorado and National Oceanic and Atmospheric Administration, US
Alejandro Egido, Starlab Barcelona, Spain
Kristine M. Larson, the University of Colorado Boulder, US
Felipe Nievinski, UFRGS, Brazil
Antonio Mollfulleda, Starlab Barcelona, Spain
Giulio Ruffini, Starlab Barcelona, Spain
Francisco Martin, Starlab Barcelona, Spain
Christine Gommenginger, National Oceanography Centre, UK
Subject Areas: Electronics & communications engineering [TJ]
