A Priority Based Transmission Control Scheme Considering Remaining Energy for Body Sensor Network

  • Encarnacion, Nico (Information and communications engineering, Kunsan National University) ;
  • Yang, Hyunho (Department of Information and Telecommunication Engineering, Kunsan National University)
  • 투고 : 2014.12.29
  • 심사 : 2015.03.28
  • 발행 : 2015.03.31

초록

Powering wireless sensors with energy harvested from the environment is coming of age due to the increasing power densities of both storage and harvesting devices and the electronics performing energy efficient energy conversion. In order to maximize the functionality of the wireless sensor network, minimize missing packets, minimize latency and prevent the waste of energy, problems like congestion and inefficient energy usage must be addressed. Many sleep-awake protocols and efficient message priority techniques have been developed to properly manage the energy of the nodes and to minimize congestion. For a WSN that is operating in a strictly energy constrained environment, an energy-efficient transmission strategy is necessary. In this paper, we present a novel transmission priority decision scheme for a heterogeneous body sensor network composed of normal nodes and an energy harvesting node that acts as a cluster head. The energy harvesting node's decision whether or not to clear a normal node for sending is based on a set of metrics which includes the energy harvesting node's remaining energy, the total harvested energy, the type of message in a normal node's queue and finally, the implementation context of the wireless sensor network.

키워드

참고문헌

  1. Park, S.; Savvides, A.; and Arivastaava, M. B.; "SensorSim: A simulation framework for sensor networks," In the Proceedings of MSWiM 2000, Boston, MA, August 2000.
  2. Mourad, F.; Kallas, M.; Snoussi, H.; Amoud, H.; "Wireless sensor networks in biomedical: body area networks," 7th International Workshop on Systems, Signal Processing and their Applications (WOSSPA), pp. 388-391, May 2011.
  3. Mitra, U.; et. al., "KNOWME: A case study in wireless body area sensor network design," IEEE Communications Magazine, vol. 50, issue 5, pp. 116-125, May 2012. https://doi.org/10.1109/MCOM.2012.6194391
  4. Seah, W.; Eu, Z.; Tan, H. P.; "Wireless sensor networks powered by ambient energy harvesting (WSN-HEAP) survey and challenges," 1st International Conference on Wireless VITAE 2009, pp 1-5, May 2009.
  5. Gopalan, S.; Park, J. T.; "Energy-efficient MAC protocols for wireless body area networks: survey," 2010 International Congress on ICUMT, pp 739-744, October 2010.
  6. Hasenfratz, D.; Meier, A.; Moser, C.; Chen, J. J.; Thiele, L.; "Analysis, comparison, and optimization of routing protocols for energy harvesting wireless sensor networks," 2010 IEEE International Conference on SUTC, pp. 29-26, June 2010.
  7. Swain, A.; Hansdah, R. C.; Chouhan, V. K.; "An energy aware routing protocol with sleep scheduling for wireless sensor networks," 24th IEEE International Conference on AINA, pp 933-940, April 2010.
  8. Vullers, R., Shaijk, R.V.; Visser, H.J., Penders, J.; Hoof, C.V.; "Energy Harvesting for Autonomous wireless sensor networks," IEEE Solid-State Circuits Magazine, vol. 2, issue 2, pp. 29-38, Spring 2010. https://doi.org/10.1109/MSSC.2010.936667
  9. Encarnacion, N.; Yang, H.H.; "A simple energy harvesting algorithm for wireless sensor networks," JICCE, pp. 359 - 364, December 2012.
  10. Sridevi, S.; Usha, M.; Lithurin, G.; Amertha, G.P.; "Priority based congestion control for heterogeneous traffic in multipath wire less sensor networks," 2012 International Conference on Computer Communication and Informatics (ICCCI), pp. 1-5, January 2012.
  11. Phan, C.V.; Kim, J.G.; "An energy - efficient transmiss ion strategy for wire less sensor networks," WCNC 2007, pp. 3406 - 3411, March 2007.
  12. Castagnetti, A.; Pegatoquet, A.; Belleudy, C.; Auguin, M.; "A framework for modeling and simulating energy harvesting WSN nodes with efficient power management policies," EURASIP Journal on Embedded Systems 2012, October 2012.
  13. Stephan, M.; Indoor Solar Energy Harvesting," www.limpkin.fr, 2012