A CORS-Based Differential Correction Approach for AIS Mobile Stations
Abstract
:1. Introduction
2. A Conceptual Model of the CORS-Based Differential Correction Approach for AIS Mobile Stations
3. A Differential Correction Approach for AIS Mobile Stations
3.1. The Differential Correction Approach for AIS Mobile Stations Using Broadcast Binary Messages
3.2. The Differential Correction Approach for AIS Mobile Stations Using Addressed Binary Messages
3.3. A Method for Generation of Corrections to the Code Measurements in a Network of Reference Stations
4. Channel Load Analysis of the Differential Correction Approach for AIS Mobile Stations
4.1. Channel Load Analysis of the Differential Correction Approach for AIS Mobile Stations Using Broadcast Binary Messages
4.2. Channel Load Analysis for the Differential Correction Approach for AIS Mobile Stations Using Addressed Binary Messages
5. Experiments on System Accuracy
5.1. Experimental Platform
5.2. Experimental Results
5.2.1. Static Positioning
5.2.2. Dynamic Positioning Experiment
5.3. Discussion
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Hu, Q.; Jiang, Y.; Zhang, J.; Sun, X.; Zhang, S. Development of an Automatic Identification System Autonomous Positioning System. Sensors 2015, 15, 28574–28591. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Jiang, Y.; Zhang, S.; Yang, D.; Zheng, K. A New Positioning Algorithm for Localization in Automatic Identification System. In Proceedings of the Society of Instrument and Control Engineers of Japan (SICE), Hangzhou, China, 28–30 July 2015; pp. 7–12. [Google Scholar]
- Wang, J.; Nie, J.; Wang, Y. The Design and Application of AIS Data Communication and Transfer Device. In Proceedings of the 7th International Conference on Emerging Trends in Engineering & Technology (ICETET), Kobe, Japan, 18–20 November 2015; pp. 153–156. [Google Scholar]
- Chen, J.; Peng, G.; Ke, R.; Zhang, X.; Chen, C.; Yang, G.; Chen, P. Development of Oilot Carry-Aboard Wi-Fi Transmitter Hooked in AIS Employing DGPS. In Proceedings of the Location and Navigation Symposium, Indian Wells, CA, USA, 4–6 May 2010; pp. 122–126. [Google Scholar]
- Rohani, M.; Gingras, D.; Gruyer, D. A Novel Approach for Improved Vehicular Positioning Uskey Cooperative Map Matching and Dynamic Base Station DGPS Concept. IEEE Trans. Intell. Transp. Syst. 2016, 17, 230–239. [Google Scholar] [CrossRef]
- Rohani, M.; Gingras, D.; Gruyer, D. Dynamic Base Station DGPS for Cooperative Vehicle Localization. In Proceedings of the International Conference on Connected Vehicles and Expo (ICCVE), Vienna, Austria, 3–7 November 2014; pp. 781–785. [Google Scholar]
- Kim, J.W.; Lee, D.K.; Cao, S.B.; Lee, S.S. Availability Evaluation and Development of Network-RTK for Vehicle in Downtown. In Proceedings of the International Conference on Information and Communication Technology Convergence (ICTC), Busan, Korea, 19–21 October 2014; pp. 557–558. [Google Scholar]
- ZHANG, P. Design on AIS Data Link Regional Differential GPS /COMPASS Precision-Navigation System. Commun. Technol. 2014, 47, 296–301. [Google Scholar]
- Tang, M. A Memetic Algorithm for the Location-Based Continuously Operating Reference Stations Placement Problem in Network Real-Time Kinematic. IEEE Trans. Cybern. 2014, 45, 2214–2223. [Google Scholar] [CrossRef] [PubMed]
- Liu, S.; Liang, Y.; Yang, X.; Liu, L. Network Communication Between CORS Base Station and Control Center. In Proceedings of the International Conference On Computer Design and Applications, Qinhuangdao, China, 25–27 June 2010; pp. 556–568. [Google Scholar]
- Garrido, M.S.; Giménez, E.; de Lacy, M.C.; Gil, A.J. Dense regional active networks and high accuracy positioning services. A case study based on the Andalusian Positioning Network (Southern Spain). IEEE J. Sel. Top. Appl. Earth 2013, 6, 2421–2433. [Google Scholar] [CrossRef]
- Strange, W.; Weston, N. The Establishment of a GPS Continuously Operating Reference Station System as a Framework for the National Spatial Reference System. In Proceedings of the 1995 National Technical Meeting of The Institute of Navigation, Anaheim, CA, USA, 18–20 January 1995; pp. 19–24. [Google Scholar]
- RTCM 10403.3, Differential GNSS (Global Navigation Satellite Systems) Services-Version 3 (October 7, 2016). Available online: http://www.rtcm.org/differential-global-navigation-satellite–dgnss–standards.html (accessed on 11 July 2018).
- Dai, L.; Han, S.; Wang, J.; Rizos, C. Comparison of Interpolation Algorithms in Network-Based GPS Techniques. Navigation 2004, 4, 277–294. [Google Scholar] [CrossRef]
- Chen, H.Y. An Instantaneous Ambiguity Resolution Procedure Suitable for Medium-Scale GPS Reference Station Networks. In Proceedings of the 13th International Technical Meeting of the Satellite Division of the Institute of Navigation, Salt Lake City, UT, USA, 19–22 September 2000; pp. 1061–1070. [Google Scholar]
- Wanninger, L. The Performance of Virtual Reference Stations in Active Geodetic GPS-Networks under Solar Maximum Conditions. In Proceedings of the 12th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, TN, USA, 14–17 September 1999; pp. 1419–1427. [Google Scholar]
- Wübbena, G.; Bagge, A.; Seeber, G.; Böder, V.; Hankemeier, P. Reducing Distance Dependent Errors for Real-Time Precise DGPS Applications by Establishing Reference Station Networks. In Proceedings of the 9th International Technical Meeting of the Satellite Division of The Institute of Navigation, Kansas, MO, USA, 17–20 September 1996; pp. 1845–1852. [Google Scholar]
- Gao, Y.; Li, Z.; McLellan, J.F. Carrier Phase Based Regional Area Differential GPS for Decimeter-Level Positioning and Navigation. In Proceedings of the 10th International Technical Meeting of the Satellite Division of The Institute of Navigation, Kansas, MO, USA, 16–19 September 1997; pp. 1305–1313. [Google Scholar]
- Gao, Y.; Li, Z. Ionosphere Effect and Modelling for Regional Area Differential GPS Network. In Proceedings of the 11th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, TN, USA, 15–18 September 1998; pp. 91–97. [Google Scholar]
- Deng, J.; Wang, Q.; Pan, S.; Zhao, X. Method of Decimeter Level Pseudo-Range Differential Positioning for GPS Based on Multiple Reference Stations. J. Southeast Univ. 2010, 40, 316–319. [Google Scholar] [CrossRef]
Parameter | Number of bits | Description |
---|---|---|
V | index | – |
Message type | 6 | Recommendation ITU-R M.823 |
Station ID | 10 | Recommendation ITU-R M.823 station identifier |
Z count | 13 | Time value in 0.6 s (0-3 599.4) |
Sequence number | 3 | Message sequence number (cyclic 0-7) |
N | 5 | Number of DGNSS data words following the two word header, up to a maximum of 29 |
Health | 3 | Reference station health (specified in Recommendation ITU-R M.823) |
DGNSS data word | N = 24 | DGNSS message data words excluding parity |
Number of bits | 736 | Assuming N = 29 (the maximum value) |
Notation | Description |
---|---|
RTCM messages from each reference station | |
Differential corrections of each reference station | |
Coordinates of AIS base station | |
Differential corrections of AIS base station | |
AIS messages: Global navigation-satellite system broadcast binary message | |
Pseudoranges between satellites and the internal GPS receiver | |
Coordinates of AIS mobile station | |
AIS messages: Position report |
Parameter | Number of bits | Description |
---|---|---|
Message ID | 6 | Always 6 |
Repeat indicator | 2 | How many times a message has been repeated |
Source ID | 30 | MMSI number of source station |
Sequence number | 2 | 0–3 |
Destination ID | 30 | MMSI number of destination station |
Retransmit flag | 1 | 0 = no retransmission = default; 1 = retransmitted |
Spare | 1 | Should be zero. Reserved for future use |
Binary data | Maximum 936 | Application identifier and application data |
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Hu, Q.; Xu, L.; Cheng, X. A CORS-Based Differential Correction Approach for AIS Mobile Stations. Sensors 2018, 18, 3626. https://doi.org/10.3390/s18113626
Hu Q, Xu L, Cheng X. A CORS-Based Differential Correction Approach for AIS Mobile Stations. Sensors. 2018; 18(11):3626. https://doi.org/10.3390/s18113626
Chicago/Turabian StyleHu, Qing, Linlin Xu, and Xinyu Cheng. 2018. "A CORS-Based Differential Correction Approach for AIS Mobile Stations" Sensors 18, no. 11: 3626. https://doi.org/10.3390/s18113626
APA StyleHu, Q., Xu, L., & Cheng, X. (2018). A CORS-Based Differential Correction Approach for AIS Mobile Stations. Sensors, 18(11), 3626. https://doi.org/10.3390/s18113626