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CRVR: Connectivity Repairing in Wireless Sensor Networks with Void Regions

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Abstract

In some applications, wireless sensor networks (WSNs) operate in very harsh environments. Sometimes, a WSN suffers from simultaneous failures of multiple sensors and gets partitioned into disjoint segments. Connectivity restoration in such a case is crucial in order to avoid negative effects on the application. Given that WSNs often operate unattended in remote areas; therefore, an auto recovery should be established. In this paper, we present the protocol Connectivity Repairing in WSN with void regions. Each segment (i.e. isolated region) selects a set of redundant nodes and classifies them according to their energy levels and creates a strengthening path to the center of their area. Simulation results show good performance of the protocol.

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References

  1. Nguyen, L.T., Defago, X., Beuran, R., Shinoda, Y.: An energy-efficient routing scheme for mobile wireless sensor networks. In: Proceedings of the 5th IEEE International Symposium on Wireless Communication Systems, Reykjavik, Iceland, 21–24 Oct 2008, pp. 568–572 (2008)

  2. Misra, P., Enge, P.: Global Positioning System: Signals, Measurements, and Performance. Book Review. Ganga-Jamuna Press, Lincoln (2001)

    Google Scholar 

  3. Bulusu, N., Heidemann, J., Estrin, D.: GPS-less low cost outdoor localization for very small devices. IEEE Pers. Commun. Mag. 7(5), 28–34 (2001)

    Article  Google Scholar 

  4. Brad, K., Kung, H.T.: GPSR: greedy perimeter stateless routing for wireless networks. In: Proceeding of the 6th Annual ACM/IEEE International Conference on Mobile Computing and Networking (MobiCom 2000) (2000)

  5. Aissani, M., Mellouk, A., Badache, N., Saidaoui, S.: Oriented void avoidance scheme for real-time routing protocols in wireless sensor networks. In: Proceeding of the IEEE GlobeCom’08, Global Communication Conference, pp. 83–87, New Orleans, LA, USA, 30 Nov–Dec 04 2008

  6. Aissani, M., Mellouk, A., Badache, N., Djebbar, M.: A preventive rerouting scheme for avoiding voids in wireless sensor networks. In: Proceeding of the IEEE GlobeCom’09, Global Communication Conference, pp. 1–5, New Orleans, LA, USA, 30 Nov–Dec 04 2009

  7. Chiang, T.C., Chang, J.L., Tsai, Y.F., Li, S.P.: Greedy geographical void routing for wireless sensor networks. Int. J. Comput. Electr. Autom. Control Inf. Eng. 7(6), 769–777 (2013)

    Google Scholar 

  8. Chen, B., Jamieson, K., Balakrishnan, H., Morris, R.: Span: an energy-efficient coordination algorithm for topology maintenance in ad hoc wireless networks. In: ACM/IEEE International Conference on Mobile Computing and Networking (MobiCom 2001), Rome, Italy, pp. 85–96, 16–21 July 2001

  9. Zhao, J., Govindan, R., Estrin, D.: Residual energy scans for monitoring wireless sensor networks. In: Proceeding of the IEEE Wireless Communications and Networking Conference (WCNC 02), Vol. 1, Orlando, FL, USA, March 2002, IEEE, New York, pp. 356–362 (2002)

  10. Vieira, L.F.M., Vieira, M.A.M., Ruiz, L.B., Loureiro, A.A.F., Silva, D.C., Fernandes, A.O.: Efficient incremental sensor network deployment algorithm. In: Proceeding of Brazilian Symposium on Computer Networks 2004, Gramado/RS, Brazil, pp. 3–14 (2004)

  11. Wang, Y.C., Tseng, Y.C.: Distributed deployment scheme for mobile wireless sensor networks to ensure multilevel coverage. IEEE Trans. Parallel Distrib. Syst. 19(9), 1280–1294 (2008)

    Article  Google Scholar 

  12. Kumar, A., Sharma, V., Prasad, D.: Distributed deployment scheme for homogeneous distribution of randomly deployed mobile sensor nodes in wireless sensor network. Int. J. Adv. Comput. Sci. Appl. 4(4), 2013 (2013)

    Google Scholar 

  13. Wang, X., Xing, G., Zhang, Y., Lu, C., Pless, R., Gill, C.: Integrated coverage and connectivity configuration in wireless sensor networks. In: Proceedings of the First ACM Conference on Embedded Networked Sensor Systems (SenSys’03), 5–7 November 2003, Los Angeles, California, USA (2003)

  14. You, J., Lieckfeldt, D., Reichenbach, F., Timmermann, D.: Context-aware geographic routing for sensor networks with routing holes. German Research Foundation 2007. http://www.amd.e-technik.uni-rostock.de/veroeff/58-60237-review.pdf. Accessed 18 May 2012

  15. Rak, J.: Resilient Routing in Communication Networks. Gdansk University of Technology, Poland (2015)

    Book  Google Scholar 

  16. Fang, Q., Gao, J., Guibas, L.J.: Locating and bypassing holes in sensors networks. IEEE Mob. Netw. Appl. 11(2), 187–200 (2006)

    Article  Google Scholar 

  17. Jia,W., Wang, T., Wang, W., Guo, M.: Hole avoiding in advance routing in wireless sensor networks. In: Proceedings of IEEE, pp. 3519–3523, March 2007

  18. Aissani, M., Mellouk, A., Badache, N., Djebbar, M.: A new approach of announcement and avoiding routing voids in wireless sensor networks. In: Proceeding of the IEEE GlobeCom’08, Global Communication Conference, pp. 1790–1794, New Orleans, LA, USA, Nov 30–Dec 04 2008

  19. Sharma, K., Sharma, T.: ZBFR: Zone Based Failure Recovery in WSNs by Utilizing Mobility and Coverage Overlapping. Springer Science + Business Media, New York (2016)

    Google Scholar 

  20. Vaidya, K., Younis, M.: Efficient failure recovery in wireless sensor networks through active spare designation. In: The Proceedings of the First International Workshop on Interconnections of Wireless Sensor Networks (IWSN’10), Santa Barbara, California, June 2010

  21. Younis, M., Akkaya, K.: Strategies and techniques for node placement in wireless sensor networks. Elsevier J. Ad Hoc Netw. 6(4), 621–655 (2008)

    Article  Google Scholar 

  22. Tamboli, N., Younis, M.: Coverage-aware connectivity restoration in mobile sensor networks. Elsevier J. Netw. Computer Appl. 33, 363–374 (2010)

    Article  Google Scholar 

  23. Lee, S., Younis, M.: Recovery from multiple simultaneous failures in wireless sensor networks using minimum Steiner tree. J. Parallel Distrib. Syst. 70, 525–536 (2010)

    Article  MATH  Google Scholar 

  24. Lee, S., Younis, M.: QoS-aware relay node placement for connecting disjoint segments in wireless sensor networks. In: The Proceedings of the First International Workshop on Interconnections of Wireless Sensor Networks (IWSN’10), Santa Barbara, California, June 2010

  25. Lee, S., Younis, M.: Optimized relay node placement for connecting disjoint wireless sensor networks. Elsevier J. Comput. Netw. 56(12), 2788–2804 (2012)

    Article  Google Scholar 

  26. Lee, S., Younis, M., Lee, M.: Connectivity restoration in a partitioned wireless sensor network with assured fault tolerance. Elsevier J. Ad Hoc Netw. 24(Part A), 1–19 (2015)

    Google Scholar 

  27. Lee, S., Younis, M., Lee, M.: Optimized bi-connected federation of multiple sensor network segments. Elsevier J. Ad Hoc Netw. 38, 1–18 (2016)

    Article  Google Scholar 

  28. Cheng, X., Du, D.-Z., Wang, L., Xu, B.: Relay sensor placement in wireless sensor networks. Springer J. Wirel. Netw. 14(3), 347–355 (2008)

    Article  Google Scholar 

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Correspondence to Karima Bouyahia.

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Bouyahia, K., Benchaïba, M. CRVR: Connectivity Repairing in Wireless Sensor Networks with Void Regions. J Netw Syst Manage 25, 536–557 (2017). https://doi.org/10.1007/s10922-016-9399-3

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  • DOI: https://doi.org/10.1007/s10922-016-9399-3

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