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A Distance-Based Advertisement-Delivery Method for Vehicular DTN

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Part of the book series: Advances in Intelligent Systems and Computing ((AISC,volume 927))

Abstract

In this paper, we propose a distance-based message relaying method to limit the replicated bundle messages in Vehicular Delay/Disruption/Disconnection Tolerant Networking (DTN). From the simulation results, we found that our proposed recovery method limits the duplicated bundle messages considering specified area by applying the distance-based advertisement-delivery method.

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References

  1. Delay- and disruption-tolerant networks (DTNs) tutorial. NASA/JPL’s Interplanetary Internet (IPN) Project (2012). http://www.warthman.com/images/DTN_Tutorial_v2.0.pdf

  2. Recommendation ITU-R P.1411-7: Propagation data and prediction methods for the planning of short-range outdoor radiocommunication systems and radio local area networks in the frequency range 300 MHz to 100 GHz. ITU (2013)

    Google Scholar 

  3. Araniti, G., Bezirgiannidis, N., Birrane, E., Bisio, I., Burleigh, S., Caini, C., Feldmann, M., Marchese, M., Segui, J., Suzuki, K.: Contact graph routing in DTN space networks: overview, enhancements and performance. IEEE Commun. Mag. 53(3), 38–46 (2015)

    Article  Google Scholar 

  4. Araniti, G., Campolo, C., Condoluci, M., Iera, A., Molinaro, A.: LTE for vehicular networking: a survey. IEEE Commun. Mag. 21(5), 148–157 (2013)

    Article  Google Scholar 

  5. Caini, C., Cruickshank, H., Farrell, S., Marchese, M.: Delay- and disruption-tolerant networking (DTN): an alternative solution for future satellite networking applications. Proc. IEEE 99(11), 1980–1997 (2011)

    Article  Google Scholar 

  6. Cerf, V., Burleigh, S., Hooke, A., Torgerson, L., Durst, R., Scott, K., Fall, K., Weiss, H.: Delay-tolerant networking architecture. IETF RFC 4838 (Informational), April 2007

    Google Scholar 

  7. Dias, J.A.F.F., Rodrigues, J.J.P.C., Xia, F., Mavromoustakis, C.X.: A cooperative watchdog system to detect misbehavior nodes in vehicular delay-tolerant networks. IEEE Trans. Ind. Electron. 62(12), 7929–7937 (2015)

    Article  Google Scholar 

  8. Fall, K.: A delay-tolerant network architecture for challenged Internets. In: Proceedings of the International Conference on Applications, Technologies, Architectures, and Protocols for Computer Communications, SIGCOMM 2003, pp. 27–34 (2003)

    Google Scholar 

  9. Grassi, G., Pesavento, D., Pau, G., Vuyyuru, R., Wakikawa, R., Zhang, L.: VANET via named data networking. In: Proceedings of the IEEE Conference on Computer Communications Workshops (INFOCOM WKSHPS 2014), pp. 410–415, April 2014

    Google Scholar 

  10. Ikeda, M., Ishikawa, S., Barolli, L.: An enhanced message suppression controller for vehicular-delay tolerant networks. In: Proceedings of the 30th IEEE International Conference on Advanced Information Networking and Applications (IEEE AINA-2016), pp. 573–579, March 2016

    Google Scholar 

  11. Mahmoud, A., Noureldin, A., Hassanein, H.S.: VANETs positioning in urban environments: a novel cooperative approach. In: Proceedings of the IEEE 82nd Vehicular Technology Conference (VTC-2015 Fall), pp. 1–7, September 2015

    Google Scholar 

  12. Ohn-Bar, E., Trivedi, M.M.: Learning to detect vehicles by clustering appearance patterns. IEEE Trans. Intell. Transp. Syst. 16(5), 2511–2521 (2015)

    Article  Google Scholar 

  13. Radenkovic, M., Walker, A.: CognitiveCharge: disconnection tolerant adaptive collaborative and predictive vehicular charging. In: Proceedings of the 4th ACM MobiHoc Workshop on Experiences with the Design and Implementation of Smart Objects (SMARTOBJECTS-2018), June 2018

    Google Scholar 

  14. Ramanathan, R., Hansen, R., Basu, P., Hain, R.R., Krishnan, R.: Prioritized epidemic routing for opportunistic networks. In: Proceedings of the 1st International MobiSys Workshop on Mobile Opportunistic Networking (MobiOpp 2007), pp. 62–66 (2007)

    Google Scholar 

  15. Rüsch, S., Schürmann, D., Kapitza, R., Wolf, L.: Forward secure delay-tolerant networking. In: Proceedings of the 12th Workshop on Challenged Networks (CHANTS-2017), pp. 7–12, October 2017

    Google Scholar 

  16. Rohrer, J.P., Mauldin, A.N.: Implementation of epidemic routing with IP convergence layer in ns-3. In: Proceedings of the 10th Workshop on NS-3 (WNS3-2018), pp. 69–76, June 2018

    Google Scholar 

  17. Sato, F., Kikuchi, R.: Hybrid routing scheme combining with geo-routing and DTN in VANET. In: Proceedings of the 10th International Conference on Innovative Mobile and Internet Services in Ubiquitous Computing (IMIS-2016), pp. 250–255, July 2016

    Google Scholar 

  18. Scenargie: Space-time engineering, LLC. http://www.spacetime-eng.com/

  19. Stute, M., Maass, M., Schons, T., Hollick, M.: Reverse engineering human mobility in large-scale natural disasters. In: Proceedings of the 20th ACM International Conference on Modelling, Analysis and Simulation of Wireless and Mobile Systems (MSWiM-2017), pp. 219–226, November 2017

    Google Scholar 

  20. Theodoropoulos, T., Damousis, Y., Amditis, A.: A load balancing control algorithm for EV static and dynamic wireless charging. In: Proceedings of the IEEE 81st Vehicular Technology Conference (VTC-2015 Spring), pp. 1–5, May 2015

    Google Scholar 

  21. Tornell, S.M., Calafate, C.T., Cano, J.C., Manzoni, P.: DTN protocols for vehicular networks: an application oriented overview. IEEE Commun. Surv. Tutor. 17(2), 868–887 (2015)

    Article  Google Scholar 

  22. Uchida, N., Ishida, T., Shibata, Y.: Delay tolerant networks-based vehicle-to-vehicle wireless networks for road surveillance systems in local areas. Int. J. Space Based Situated Comput. 6(1), 12–20 (2016)

    Article  Google Scholar 

  23. Urquiza-Aguiar, L., Igartua, M.A., Tripp-Barba, C., Calderón-Hinojosa, X.: 2hGAR: 2-hops geographical anycast routing protocol for vehicle-to-infrastructure communications. In: Proceedings of the 15th ACM International Symposium on Mobility Management and Wireless Access (MobiWac-2017), pp. 145–152, November 2017

    Google Scholar 

  24. Vahdat, A., Becker, D.: Epidemic routing for partially-connected ad hoc networks. Duke University, Technical report (2000)

    Google Scholar 

  25. Wyatt, J., Burleigh, S., Jones, R., Torgerson, L., Wissler, S.: Disruption tolerant networking flight validation experiment on NASA’s EPOXI mission. In: Proceedings of the 1st International Conference on Advances in Satellite and Space Communications (SPACOMM-2009), pp. 187–196, July 2009

    Google Scholar 

  26. Yoshino, Y., Nakasaki, S., Ikeda, M., Barolli, L.: A threshold-based adaptive method for message suppression controller in vehicular DTNs. In: Proceedings of the 13th International Conference on Broad-Band Wireless Computing, Communication and Applications (BWCCA-2018), pp. 517–524, October 2018

    Google Scholar 

  27. Zhang, W., Jiang, S., Zhu, X., Wang, Y.: Cooperative downloading with privacy preservation and access control for value-added services in VANETs. Int. J. Grid Util. Comput. 7(1), 50–60 (2016)

    Article  Google Scholar 

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Correspondence to Makoto Ikeda .

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Nakasaki, S., Yoshino, Y., Ikeda, M., Barolli, L. (2019). A Distance-Based Advertisement-Delivery Method for Vehicular DTN. In: Barolli, L., Takizawa, M., Xhafa, F., Enokido, T. (eds) Web, Artificial Intelligence and Network Applications. WAINA 2019. Advances in Intelligent Systems and Computing, vol 927. Springer, Cham. https://doi.org/10.1007/978-3-030-15035-8_20

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