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WVANET: Modelling a Novel Web Based Communication Architecture for Vehicular Network

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Abstract

Vehicular Ad hoc Network (VANET) is considered as most emerging technology for the past decade of years. Research in VANET brings up new communication architecture for reliable communication. This paper proposes a novel communication architecture for vehicular ad hoc network. In the proposed architecture VANET and web technology are integrated together to form Web VANET architecture known as WVANET. WiMAX is fixed at the roadsides to transfer the web signals to vehicles and Extensible Messaging and Presence Protocol is used to transfer and receive messages among the vehicles. The proposed communication architecture is modelled and better communication performance is obtained. The web communication architecture in VANET reduces the overheads existing in the previous communication models. Message transmission is very fast in WVANET, since web technology is integrated. Overall, the proposed communication model is reliable and fast than the other communication models exist in VANET.

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References

  1. Xiong, H., Chen, Z., & Li, F. (2012). Efficient and multi-level privacy-preserving communication protocol for VANET. Computers & Electrical Engineering, 38, 573–581.

    Article  Google Scholar 

  2. Ramakrishnan, B., Rajesh, R. S., & Shaji, R. S. (2010). Performance analysis of 802.11 and 802.11p in cluster based simple highway mode. International journal of computer science and technologies, 1(5), 420–426.

    Google Scholar 

  3. Ramakrishnan, B., Milton Joe, M., & Bhagavath Nishanth, R. (2014). Modeling and simulation of efficient cluster based manhattan model for vehicular communication. Journal of Emerging Technologies in Web Intelligence, 6(2), 253–261.

    Google Scholar 

  4. Sandonis, V., Calderon, M., Soto, I., & Bernardos, C. J. (2013). Design and performance evaluation of a PMIPv6 solution for geonetworking-based VANETs. Ad Hoc Networks, 11, 2069–2082.

    Article  Google Scholar 

  5. Wahab, O. A., Otrok, H., & Mourad, A. (2013). VANET QoS-OLSR: QoS-based clustering protocol for Vehicular Ad hoc Networks. Computer Communications, 36, 1422–1435.

    Article  Google Scholar 

  6. Hongseok, Y., & Dongkyun Kim, K. (2011). Repetition-based cooperative broadcasting for vehicular ad-hoc networks. Computer Communications, 34(15), 1870–1882.

    Article  Google Scholar 

  7. Isaac, J.-T., Camara, J.-S., Zeadally, S., & Marquez, J.-T. (2012). A Secure vehicle-to-roadside communication payment protocol in vehicular ad hoc networks. Computer Communications, 31(10), 2478–2484.

    Article  Google Scholar 

  8. Yousefi, S., Altman, E., El-Azouzi, R., & Fathy, M. (2008). Improving connectivity in vehicular ad hoc networks: An analytical study. Computer Communications, 31(9), 1653–1659.

    Article  Google Scholar 

  9. Lim, S., Yu, C., & Das, C.-R. (2012). Cache invalidation strategies for internet-based vehicular ad hoc networks. Computer Communications, 35(3), 380–391.

    Article  Google Scholar 

  10. Shieh, W.-Y., Lee, W.-H., & Shen, L. (2006). Analysis of the optimum configuration of roadside units and onboard units in dedicated short-range communication systems. IEEE Transactions on Intelligent Transportation Systems, 7(4), 565–571.

    Article  Google Scholar 

  11. Milton Joe, M., Shaji, R. S., & Thulasi, R. (2013). Modeling Network Communication in VANET using Bluetooth Technology. International Journal of Advanced and Innovative Research, 2(3), 643–651.

    Google Scholar 

  12. Milton Joe, M., Ramakrishnan, B., & Shaji, R. S. (2014). Modeling GSM based network communication in vehicular network. IJCNIS, 6(3), 37–43. doi:10.5815/ijcnis.2014.03.05.

    Article  Google Scholar 

  13. Tuteja, A., Gujral, R., Thalia, S. (2010). Comparative performance analysis of DSDV, AODV and DSR routing protocols in MANET Using NS2. In International conference on ACE, pp. 330–333.

  14. Milton Joe, M., Shaji, R. S., & Ashok Kumar, K. (2013). Establishing inter vehicle wireless communication in vanet and preventing it from hackers. IJCNIS, 5(8), 55–61. doi:10.5815/ijcnis.2013.08.07.

    Article  Google Scholar 

  15. http://en.wikipedia.org/wiki/Web_service.

  16. Milton Joe, M., Ramakrishnan, B., & Shaji, R. S. (2013). Prevention of losing user account by enhancing security module: A facebook case. Journal of Emerging Technologies in Web Intelligence, 5(3), 247–256.

    Google Scholar 

  17. Shehab, M., Squicciarini, A., Ahn, G.-J., & Kokkinou, I. (2012). Access control for online social networks third party applications. Computers & Security, 31, 897–911.

    Article  Google Scholar 

  18. Milton Joe, M., & Ramakrishnan, B. (2014). Enhancing security module to prevent data hacking in online social networks. Journal of Emerging Technologies in Web Intelligence, 6(2), 184–191.

    Google Scholar 

  19. Yin, H., Fu, Q., Lin, C., Lin, C., Ding, R., Lin, Y., et al. (2006). Mobile police information system based on web services. In Tsinghua science and technology (Vol. 11(1), pp. 1–7), ISSN 1007-0214 01/21.

  20. Shivaldova, V., Paier, A., Smely, D., & MecklenbrÌâuker, C. F. (2012). On roadside unit antenna measurements for vehicle-to-infrastructure communications. In 23d IEEE international symposium on personal, indoor and mobile communications (PIMRC).

  21. Ramakrishnan, B., Rajesh, R. S., & Shaji, R. S. (2011). CBVANET: A cluster based vehicular ad hoc network model for simple highway communication. International Journal of Advanced Networking and Applications, 2(4), 755–761.

    Google Scholar 

  22. Ramakrishnan, B., Rajesh, R. S., & Shaji, R. S. (2010). An efficient vehicular communication outside the city environments. International Journal of Next-Generation Networks (IJNGN), 2(4), 1.

    Article  Google Scholar 

  23. Milton Joe, M., & Ramakrishnan, D. B. (2014). A survey of various security issues in online social networks. International Journal of Computer Networks and Applications, 1(1), 11–14.

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Milton Joe, M., Ramakrishnan, B. WVANET: Modelling a Novel Web Based Communication Architecture for Vehicular Network. Wireless Pers Commun 85, 1987–2001 (2015). https://doi.org/10.1007/s11277-015-2886-0

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  • DOI: https://doi.org/10.1007/s11277-015-2886-0

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