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Towards Optimal Event Detection and Localization in Acyclic Flow Networks

  • Conference paper
Distributed Computing and Networking (ICDCN 2012)

Part of the book series: Lecture Notes in Computer Science ((LNTCS,volume 7129))

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Abstract

Acyclic flow networks, present in many infrastructures of national importance (e.g., oil & gas and water distribution systems), have been attracting immense research interest. Existing solutions for detecting and locating attacks against these infrastructures, have been proven costly and imprecise, especially when dealing with large scale distribution systems. In this paper, to the best of our knowledge for the first time, we investigate how mobile sensor networks can be used for optimal event detection and localization in acyclic flow networks. Sensor nodes move along the edges of the network and detect events (i.e., attacks) and proximity to beacon nodes with known placement in the network. We formulate the problem of minimizing the cost of monitoring infrastructure (i.e., minimizing the number of sensor and beacon nodes deployed), while ensuring a degree of sensing coverage in a zone of interest and a required accuracy in locating events. We propose algorithms for solving these problems and demonstrate their effectiveness with results obtained from a high fidelity simulator.

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References

  1. U.S. Government Accountability Office, Drinking water: Experts’ views on how federal funding can be spent to improve security (September 2004)

    Google Scholar 

  2. U.S. Environmental Protection Agency, Response protocol toolbox: Planning for and responding to contamination threats to drinking water systems, Water Utilities Planning Guide-Module 1 (2003)

    Google Scholar 

  3. Zechman, E., Ranjithan, S.: Evolutionary computation-based methods for characterizing contaminant sources in a water distribution system. J. Water Resources Planning and Management, 334–343 (2009)

    Google Scholar 

  4. Zechman, E.: Agent-based modeling to simulate contamination events and evaluate threat management strategies in water distribution systems. Risk Analysis (2011)

    Google Scholar 

  5. Ostfeld, A., Salomons, E.: Optimal layout of early warning detection stations for water distribution systems security. J. Water Resources Planning and Management, 377–385 (2004)

    Google Scholar 

  6. Ostfeld, A., et al.: The battle of the water sensor networks (BWSN): A design challenge for engineers and algorithms. Journal of Water Resources Planning and Management (2006)

    Google Scholar 

  7. Stoianov, I., Nachman, L., Madden, S., Tokmouline, T.: PIPENET: A wireless sensor network for pipeline monitoring. In: IPSN (2007)

    Google Scholar 

  8. Whittle, A.J., Girod, L., Preis, A., Allen, M., Lim, H.B., Iqbal, M., Srirangarajan, S., Fu, C., Wong, K.J., Goldsmith, D.: WATERWISE@SG: A testbed for continuous monitoring of the water distribution system in singapore. In: Water Distribution System Analysis, WSDA (2010)

    Google Scholar 

  9. He, T., Krishnamurthy, S., Stankovic, J.A., Abdelzaher, T., Luo, L., Stoleru, R., Yan, T., Gu, L.: An energy-efficient surveillance system using wireless sensor networks. In: MobiSys (2004)

    Google Scholar 

  10. George, S., Zhou, W., Chenji, H., Won, M., Lee, Y.O., Pazarloglou, A., Stoleru, R., Barooah, P.: DistressNet: a wireless ad hoc and sensor network architecture for situation management in disaster response. IEEE Communications Magazine 48(3), 128–136 (2010)

    Article  Google Scholar 

  11. Szewczyk, R., Mainwaring, A., Polastre, J., Anderson, J., Culler, D.: An analysis of a large scale habitat monitoring application. In: ACM SenSys (2004)

    Google Scholar 

  12. Bar-Yehuda, R., Even, S.: A linear-time approximation algorithm for the weighted vertex cover problem. Journal of Algorithms 2, 198–203 (1981)

    Article  MathSciNet  MATH  Google Scholar 

  13. EPANET v2.0, Environmental Protection Agency, Tech. Rep. (2006)

    Google Scholar 

  14. Brumbelow, K., Torres, J., Guikema, S., Bristow, E., Kanta, L.: Virtual cities for water distribution and infrastructure system research. In: World Environmental and Water Resources Congress (2007)

    Google Scholar 

  15. Leskovec, J., Krause, A., Guestrin, C., Faloutsos, C., Van Briesen, J., Glance, N.: Cost-effective outbreak detection in networks. In: KDDM (2007)

    Google Scholar 

  16. Lai, T.-t., Chen, Y.-h., Huang, P., Chu, H.-h.: PipeProbe: a mobile sensor droplet for mapping hidden pipeline. In: SenSys (2010)

    Google Scholar 

  17. Magistretti, E., Kong, J., Lee, U., Gerla, M., Bellavista, P., Corradi, A.: A mobile delay-tolerant approach to long-term energy-efficient underwater sensor networking. In: WCNC (2007)

    Google Scholar 

  18. Lee, U., Gerla, M.: A survey of urban vehicular sensing platforms. Comput. Netw. 54, 527–544 (2010)

    Article  MATH  Google Scholar 

  19. Hull, B., Bychkovsky, V., Zhang, Y., Chen, K., Goraczko, M., Miu, A., Shih, E., Balakrishnan, H., Madden, S.: CarTel: a distributed mobile sensor computing system. In: SenSys (2006)

    Google Scholar 

  20. Lee, U., Zhou, B., Gerla, M., Magistretti, E., Bellavista, P., Corradi, A.: Mobeyes: smart mobs for urban monitoring with a vehicular sensor network. Wireless Communications 13(5) (2006)

    Google Scholar 

  21. Tahbaz-Salehi, A., Jadbabaie, A.: Distributed coverage verification in sensor networks without location information. IEEE Transactions on Automatic Control 55(8) (August 2010)

    Google Scholar 

  22. Meguerdichian, S., Koushanfar, F., Potkonjak, M., Srivastava, M.B.: Coverage problems in wireless ad-hoc sensor networks. In: INFOCOM (2001)

    Google Scholar 

  23. Cardei, M., Thai, M.T., Li, Y., Wu, W.: Energy efficient target coverage in wireless sensor networks. In: INFOCOM (2005)

    Google Scholar 

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© 2012 Springer-Verlag Berlin Heidelberg

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Agumbe Suresh, M., Stoleru, R., Denton, R., Zechman, E., Shihada, B. (2012). Towards Optimal Event Detection and Localization in Acyclic Flow Networks. In: Bononi, L., Datta, A.K., Devismes, S., Misra, A. (eds) Distributed Computing and Networking. ICDCN 2012. Lecture Notes in Computer Science, vol 7129. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-25959-3_13

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  • DOI: https://doi.org/10.1007/978-3-642-25959-3_13

  • Publisher Name: Springer, Berlin, Heidelberg

  • Print ISBN: 978-3-642-25958-6

  • Online ISBN: 978-3-642-25959-3

  • eBook Packages: Computer ScienceComputer Science (R0)

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