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Traffic Network Structure of Internet of Vehicles

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Green Intelligent Transportation Systems (GITSS 2016)

Part of the book series: Lecture Notes in Electrical Engineering ((LNEE,volume 419))

Abstract

Internet of Vehicles (IoV) is an extended application of Internet of Things (IoT) in transportation. The traffic network is composed of vehicles, roads, persons, and other entities, with wireless interactions between them. In order to get acquainted and learn more about its components and information transfer, this paper puts forward a general Internet framework of IoV. In addition, communication technologies are compared and discussed in detail. Besides, data transmission of each link in the network is analyzed briefly. Finally, remarks of technical challenges are provided, to have a deeper understanding of the status of IoV.

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References

  1. Dorrell, D., A. Vinel, and D. Cao. 2015. Connected vehicles-advancements in vehicular technologies and informatics. IEEE Transactions on Industrial Electronics 62 (12): 7824–7826.

    Article  Google Scholar 

  2. Li, F., and Y. Wang. 2007. Routing in vehicular ad hoc networks: A survey. IEEE Vehicular Technology Magazine 2 (2): 12–22.

    Article  Google Scholar 

  3. Yang, F., and S. Wang, et al. 2014. An overview of internet of vehicles. Communications China 10: 1–15.

    Article  Google Scholar 

  4. Grace, N., C. Oxley, and S. Sloan, et al. 2012. Transforming Transportation through Connectivity: ITS Strategic Research Plan, 2010–2014 (progress update, 2012). Its Program Applications.

    Google Scholar 

  5. Smith, B.L. 1993. Intelligent vehicle-highway system (IVHS) activities in the Virginia Department of Transportation. Functional Analysis & Its Applications 46 (2): 121–132.

    Google Scholar 

  6. Fujita, O. 2010. Vehicle Information and Communication System. Betascript Publishing.

    Google Scholar 

  7. Hübner, U. 2010. Health telematics Europe. Nursing informatics, 375–400. London: Springer.

    Book  Google Scholar 

  8. Miller, J. 2008. Vehicle-to-vehicle-to-infrastructure (V2V2I) Intelligent Transportation System Architecture. In Intelligent Vehicles Symposium, 2008 IEEE. IEEE: 715–720.

    Google Scholar 

  9. Zeng, X., K. Balke., and P. Songchitruksa. 2012. Potential Connected Vehicle Applications to Enhance Mobility, Safety, and Environmental Security. Southwest Region University Transportation Center.

    Google Scholar 

  10. Crash Avoidance Metrics Partnership. 2005. Vehicle Safety Communications Project Task 3: Final Report-Identify Intelligent Vehicle Safety Applications Enabled by DSRC. DOTHS-809-859. CAMP Vehicle Safety Communications Consortium.

    Google Scholar 

  11. Dar, K., M. Bakhouya, J. Gaber, et al. 2010. Wireless communication technologies for ITS applications [topics in automotive networking]. Communications Magazine IEEE 48 (5): 156–162.

    Article  Google Scholar 

  12. Cho, W., K.S. Han., and H.K. Choi, et al. 2009. Realization of Anti-collision Warning Application using V2V Communication. Vehicular Networking Conference (VNC), 2009 IEEE. IEEE: 1–5.

    Google Scholar 

  13. Bergenhem, C., R. Johansson., and E. Coelingh. 2014. V2V communication Quality: Measurements in a Cooperative Automotive Platooning Application. SAE World Congress 2014.

    Google Scholar 

  14. Federal Highway Administration. 2010. Cooperative Intersection Collision Avoidance System-Stop Sign Assist: Concept of Operations. http://www.dot.state.mn.us/guidestar/2006_2010/cicas/CICAS_SSA_ConOps_FINAL_3_18_08.pdf. Accessed Nov 2010.

  15. Andrews, S., and M. Cops. 2009. Vehicle Infrastructure Integration Proof of Concept—Infrastructure. FHWA-JPO-09-038, FHWA-JPO-09-048, FHWA-JPO-09-057. Washington, D.C.: US DOT Research and Innovative Technology Administration.

    Google Scholar 

  16. Federal Highway Administration. 2011. Increasing Highway Throughput Communications and Control Technologies to Improve Traffic Flow. http://www.fhwa.dot.gov/advancedresearch/pubs/inchwyfact.cfm. Accessed Jan 2011.

  17. Smith, B., and B. Park. 2011. Advanced Freeway Merge Assistance: Harnessing the Potential of Intellidrive. http://cts.virginia.edu/research_view_detail.php?projectID=166. Accessed Jan 2011.

  18. Liao, C.F., G.A. Davis, et al. 2007. Simulation study of a bus signal priority strategy based on GPS/AVL and wireless communications. Transportation Research Record: Journal of the Transportation Research Board 2034: 82–91.

    Article  Google Scholar 

  19. Lee, S., and D. Kim. 2016. An energy efficient vehicle to pedestrian communication method for safety applications. Wireless Personal Communications 86 (4): 1845–1856.

    Article  Google Scholar 

  20. Anaya, J.J., P. Merdrignac., and O. Shagdar, et al. 2014. Vehicle to Pedestrian Communications for Protection of Vulnerable Road Users. 2014 IEEE Intelligent Vehicles Symposium (IV), 1037–1042.

    Google Scholar 

  21. Caminiti, L., J.C. Lovell., and J.J. Richardson, et al. 2014. Communication Based Vehicle-Pedestrian Collision Warning System. US8903640.

    Google Scholar 

  22. Strickland, R.D., M. Yuan., and S. Bai, et al. 2015. Vehicle to Pedestrian Communication System and Method. US20150035685.

    Google Scholar 

  23. Tengler, S., and R. Heft. 2014. Vehicle On-Board Unit. US8655543.

    Google Scholar 

  24. John, A., and Volpe National Transportation Systems Center. 2008. Vehicle-Infrastructure Integration (VII) Initiative Benefit-Cost Analysis Version 2.3 (Draft). Washington, D.C.: Federal Highway Administration.

    Google Scholar 

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Acknowledgements

This study is partially supported by the National Key R&D Program in China (No. 2016YFB0100906) and the Science and Technology Demonstration Project of Ministry of Transport of China (No. 2015364X16030).

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Correspondence to Linghui Xu .

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Xu, L., Lu, J., Zhang, J. (2018). Traffic Network Structure of Internet of Vehicles. In: Wang, W., Bengler, K., Jiang, X. (eds) Green Intelligent Transportation Systems. GITSS 2016. Lecture Notes in Electrical Engineering, vol 419. Springer, Singapore. https://doi.org/10.1007/978-981-10-3551-7_43

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  • DOI: https://doi.org/10.1007/978-981-10-3551-7_43

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-10-3550-0

  • Online ISBN: 978-981-10-3551-7

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