Improving Maximum Data Collection Based On Pre-Specified Path Using a Mobile Sink for WSN
Description
Data aggregation is one of the challenging issues which are faced in the wireless sensor network by using Energy Harvesting Sensors. Data collection in a fixed pre-defined path with time varying characteristic forms a major problem in Energy Harvesting Sensor Networks. In the proposed work the Adjustment based allocation method is used to allocate fixed time slots to each sensor nodes in which the network throughput can be increased with less energy consumption. The mobile sink transmits the polling message to all the nodes within the transmission range and makes decision based on the profits gained by the sensor nodes in each timeslot. The NP-Hard problem is defined with the form of reducing the complexity of the sensor nodes where larger number of data can be collected from the environment. The data collection throughput is maximized with the use of optimized path for the mobile sink in the network. This record was migrated from the OpenDepot repository service in June, 2017 before shutting down.
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References
- [1] M. Di Francesco, S. K. Das, and G. Anastasi, "Data collection in wireless sensor networks with mobile elements: A survey," ACM Trans.Sen. Netw., vol. 8, no. 1, pp. 1–31, Aug. 2011. [2] L. Song and D. Hatzinakos, "Architecture of wireless sensor networks with mobile sinks: Sparsely deployed sensors," IEEE Trans. Veh. Technol., vol. 56, no. 4, pp. 1826–1836, Jul. 2007. [3] Abbas Mehrabi, Kiseon Kim, "Maximizing Data Collection Throughput on a Path in Energy Harvesting Sensor Networks Using a Mobile Sink," IEEE Transactions on Mobile Computing, vol. 15 , no. 3 pp. 690-704, March 2016. [4] S. Gao, H. Zhang, and S. K. Das, "Efficient data collection in wireless sensor networks with path-constrained mobile sinks," IEEE Trans. Mobile Comput., vol. 10, no. 4, pp. 592–608, Apr. 2011. [5] L. He, J. Pan, and J. Xu, "A progressive approach to reducing data collection latency in wireless sensor networks with mobile elements," IEEE Trans. Mobile Comput., vol. 12, no. 7, pp. 1308–1320, Jul. 2013. [6] W. Liang and J. Luo, "Network lifetime maximization in sensor networks with multiple mobile sinks," in Proc. IEEE 36th Local Comput. Netw., 2011, pp. 350–357. [7] B. Zhang, R. Simon, and H. Aydin, "Maximum utility rate allocation for energy harvesting wireless sensor networks," in Proc. 14th ACM Int. Conf. Model., Anal. Simul. Wireless Mobile Syst., 2011, pp. 7–16. [8] X. Ren and W. Liang, "The use of a mobile sink for quality data collection in energy harvesting sensor networks," in Proc. IEEE Wireless Commun. Netw. Conf., 2013, pp. 1145–1150. [9] X. Ren and W. Liang, " Use of a mobile sink for maximizing data collection in energy harvesting sensor networks," in Proc. IEEE 42nd Int. Conf. Parallel Process., 2013, pp. 439-448. [10] G. Xing, T. Wang, W. Jia, and M. Li, "Rendezvous design algorithm for wireless sensor networks with a mobile base station," in Proc. 9th ACM Int. Symp. Mobile Ad Hoc Netw. Comput., 2008, pp. 231–240. [11] W. Liang, P. Schweitzer, and Z. Xu, "Approximation algorithms for capacitated minimum spanning forest problems in wireless sensor networks with a mobile sink," IEEE Trans. Comput., vol. 62, no. 10, pp. 1932–1944, Oct. 2013. [12] J. Luo and J. Hubaux, "Joint mobility and routing for lifetime elongation in wireless sensor networks," in Proc. 24th IEEE INFOCOM, 2005, pp. 1735–1746. [13] R. S. Liu, K. W. Fan, Z. Zheng, and P. Sinha, "Perpetual and fair data collection for environmental energy harvesting sensor networks," IEEE/ACM Trans. Netw., vol. 19, no. 4, pp. 947–960, Aug. 2011. [14] A. Kinalis, S. Nikoletseas, D. Patroumpa, and J. Rolim, "Biased sink mobility with adaptive stop times for low latency data collection in sensor networks," Inf. Fusion, Elsevier, vol. 15, pp. 56–63, Jan. 2014. [15] M. Khan, W. Gansterer, and G. Haring, "Static vs. mobile sink: The influence of basic parameters on energy efficiency in wireless sensor networks," Elsevier Computer Commun., vol. 36, no. 9, pp. 965–978, May 2013. [16] R. S. Liu, P. Sinha, and C. E. Koksal, "Joint energy management and resource allocation in rechargeable sensor networks," in Proc. 10th IEEE Int. Conf. Inf. Commun., 2010, pp. 1–9. [17] Y. Yun and Y. Xia, "Maximizing the Lifetime of wireless sensor networks with mobile sink in delay-tolerant applications," IEEE Trans. Mobile Comput., vol. 9, no. 9, pp. 1308–1318, Sep. 2010. [18] Z. M. Wang, S. Basagni, E. Melachrinoudis, and C. Petrioli,"Exploiting sink mobility for maximizing sensor networks lifetime," in Proc. IEEE 38th Hawaii Int. Conf. Syst. Sci., 2005,pp. 287–296. [19] D. Gunduz, K. Stamatiou, N. Michelusi, and M. Zorzi, "Designing intelligent energy harvesting communication systems," IEEE Commun. Mag., vol. 52, no. 1, pp. 210–216, Jan. 2014.