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A New Mobility Management Scheme for Intelligent Transportation Systems

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Abstract

Internet of Things (IoT) applications attract great interests recently. Intelligent Transportation System (ITS) is one of the most appealing applications of IoT. It is essential to efficiently managing various mobility in IoT/ITS to provide seamless Internet connectivity. The existing mobility management proposals are needed to be extended to support diverse mobility in future IoT/ITS environment. Quite a few distinct features of the mobility presented in context of IoT/ITS are needed to be considered. Among others, the resource-constrained mobile nodes are likely to move together with the vehicles or the human bodies in IoT/ITS. In this paper, a network-based mobility management scheme which supports group mobility to provide globally ubiquitous IoT/ITS services is proposed. As shown in the performance evaluation results, the proposed mobility management scheme can shorten handoff delay, reduce signaling overhead, and decrease power consumption in IoT/ITS.

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References

  1. http://www.gartner.com/newsroom/id/2867917.

  2. Höller, J., Tsiatsis, V., Mulligan, C., Karnouskos, S., Avesand, S., & Boyle, D. (2014). From machine-to-machine to the internet of things: Introduction to a new age of intelligence. Amsterdam: Elsevier.

    Google Scholar 

  3. Ramjee, R., La Porta, T., Salgarelli, L., Thuel, S., Varadhan, K., & Li, L. (2000). IP-based access network infrastructure for next generation wireless data networks. IEEE Personal Communications, 7(4), 34–41.

    Article  Google Scholar 

  4. Perkins, C., Johnson, D., & Arkko, J. (2011). Mobility support in IPv6. IETF RFC6275.

  5. Saha, D., Mukherjee, A., Misra, I. S., & Chakraborty, M. (2004). Mobility support in IP: A survey of related protocols. IEEE Network, 18(6), 34–40.

    Article  Google Scholar 

  6. Soliman, H., Castelluccia, C., Elmalki, K., & Bellier, L. (2005). Hierarchical mobile IPv6 (HMIPv6) mobility management. IETF RFC5380.

  7. Lee, S., Latchman, H. A., & Park, B. (2010). Efficient handover scheme of proxy mobile IPv6 in wireless local area networks. International Journal of Multimedia and Ubiquitous Engineering, 5(2), 1–19.

    Google Scholar 

  8. Atzori, L., Iera, A., & Morabito, G. (2010). The internet of things: A survey. Computer Networks, 54, 2787–2805.

    Article  MATH  Google Scholar 

  9. http://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=OJ:L:2010:207:0001:0013:EN:PDF.

  10. http://en.wikipedia.org/wiki/Intelligent_transportation_system.

  11. Kim, J., Haw, R., Cho, E. J., Hong, C. S., & Lee, S. (2012). A 6LoWPAN sensor node mobility scheme based on proxy mobile IPv6. IEEE Transactions on Mobile Computing, 11(12), 2060–2072.

    Article  Google Scholar 

  12. Park, JW., Kim, JI., & Koh, SJ. (2011). Q-PMIP: Query-based proxy mobile IPv6. Proceedings of the 13th International Conference on Advanced Communication Technology (ICACT), pp. 742–745.

  13. Gundavelli, S., Leung, K., Devarapalli, V., Chowdhury, K., & Patil, B. (2008). Proxy mobile IPv6. IETF RFC5213.

  14. Kim, HG., Kim, JM., & Kim, HS. (2013). A global mobility scheme for seamless multicasting in proxy mobile IPv6 networks. Proceedings of the 15th International Conference on Advanced Communications Technology, pp. 233–239.

  15. Giaretta, G. (2012). Interactions between proxy mobile IPv6 (PMIPv6) and mobile IPv6 (MIPv6): Scenarios and related issues. IETF RFC6612.

  16. Kim, J. H., Hong, C. S., & Shon, T. (2008). A lightweight NEMO protocol to support 6LoWPAN. ETRI Journal, 30(5), 685–695.

    Article  Google Scholar 

  17. Li, Y., Jiang, Y., Su, H., Jin, D., Su, L., & Zeng, L. (2009). A group-based handoff scheme for correlated mobile nodes in proxy mobile IPv6. Proceedings of IEEE Global Telecommunications Conference. pp. 1–6.

  18. Chai, R., Zhao, Y.-L., Chen, QB., Dong, T., & Zhou, WG. (2010). Group mobility in 6LoWPAN-based WSN. Proceedings of International Conference on Wireless Communications and Signal Processing. pp. 1–5.

  19. Chen, YS., Hsu, CS., & Lee, HK. (2013) An enhanced group mobility protocol for 6LoWPAN-based wireless body area networks. Proceedings of the IEEE Wireless Communications and Networking Conference.

  20. Devarapalli, V., Wakikawa, R., Petrescu, A., & Thubert, P. (2005). Network mobility (NEMO) basic support protocol. IETF, RFC3963.

  21. Jeon, S., & Kim, Y. (2011). Cost-efficient network mobility scheme over proxy mobile IPv6 network. IET Communications, 5(18), 2656–2661.

    Article  Google Scholar 

  22. Ernst, T., & Lach, HY. (2007). Network mobility support terminology. IETF RFC4885.

  23. Lee, JH., Han, BJ., Chung, TM., & Lim, HJ. (2008) Network mobility basic support within proxy mobile IPv6: Scenarios and analysis. IETF, draft-jhlee-netlmm-nemo-scenarios-01.

  24. Hsiao, YK., & Lin, YW. (2013). A mobility management scheme for Internet of Things. Proceedings of the 4th International Conference on Mobile, Ubiquitous, and Intelligent Computing.

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Acknowledgements

Funding was provided in part of by R.O.C. National Science Council (Grant No. NSC 100-2221-E-142-006 and NSC 101-2221-E-142-006).

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Correspondence to Yen-Wen Lin.

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Lin, YW., Hsiao, YK. & Yeh, ZS. A New Mobility Management Scheme for Intelligent Transportation Systems. Wireless Pers Commun 96, 3081–3112 (2017). https://doi.org/10.1007/s11277-017-4342-9

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  • DOI: https://doi.org/10.1007/s11277-017-4342-9

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