Design of Predictive and Dynamic Energy-Efficient Mechanisms for IEEE 802.16e
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  • 作者:Huei-Wen Ferng (1)
    Hong-Yu Li (1)
  • 关键词:Energy ; efficient mechanism ; Sleep mode ; IEEE 802.16e ; Power saving
  • 刊名:Wireless Personal Communications
  • 出版年:2013
  • 出版时间:February 2013
  • 年:2013
  • 卷:68
  • 期:4
  • 页码:1807-1835
  • 全文大小:954KB
  • 参考文献:1. IEEE Computer Society LAN MAN Standards Committee. (1999). / IEEE Std 802.11: Wireless LAN medium access control and physical layer specifications.
    2. IEEE 802.16-2001. (2002). / IEEE standard for local and metropolitan area networks鈥擯art 16: Air interface for fixed broadband wireless access systems.
    3. IEEE 802.16-2004. (2004). / IEEE standard for local and metropolitan area networks鈥擯art 16: Air interface for fixed broadband wireless access systems.
    4. IEEE 802.16e-2005. (2006). / IEEE standard for local and metropolitan area networks Part 16: Air interface for fixed and mobile broadband wireless access systems amendment 2: physical and medium access control layers for combined fixed and mobile operation in licensed bands and corrigendum 1.
    5. Xiao Y., Li H., Pan Y., Wu K., Li J. (2004) On optimizing energy consumption for mobile handsets. IEEE Transactions on Vehicular Technology 53(6): 1927鈥?941 CrossRef
    6. Cohen R., Katzir L., Rizzi R. (2008) On the trade-off between energy and multicast efficiency in 802.16e-like mobile networks. IEEE Transactions on Mobile Computing 7(3): 346鈥?57 CrossRef
    7. Kwon S. J., Chung Y. W., Sung D. K. (2003) Queueing model of sleep-mode operation in cellular digital packet data. IEEE Transactions on Vehicular Technology 52(4): 1158鈥?162 CrossRef
    8. Yang S. R., Yan S. Y., Hung H. N. (2007) Modeling UMTS power saving with bursty packet data traffic. IEEE Transactions on Mobile Computing 6(12): 1398鈥?409 CrossRef
    9. Cho, S. K., & Kim, Y. G. (2007). Improving power savings by using adaptive initial-sleep window in IEEE802.16e. In / Proceedings of IEEE VTC 鈥?7 (pp. 1321鈥?325).
    10. Han, K., & Choi, S. (2006). Performance analysis of sleep mode operation in IEEE 802.16e mobile broadband wireless access systems. In / Proceedings of IEEE VTC 鈥?6 (pp. 1141鈥?145).
    11. Huang, S. C., Jan, R. H., & Chen, C. (2007). Energy efficient scheduling with QoS guarantee for IEEE 802.16e broadband wireless access networks. In / Proceedings of ACM IWCMC 鈥?7 (pp. 547鈥?52)
    12. Jang, J., Han, K., & Choi, S. (2006). Adaptive power saving strategies for IEEE 802.16e mobile broadband wireless access. In / Proceedings of IEEE APCC 鈥?6 (pp. 1鈥?).
    13. Shi, J. L., Fang, G. F., Sun, Y., Zhou, G. H., Li, Z. C., & Dutkiewicz, E. (2006). WLC17-5: Improving mobile station energy efficiency in IEEE 802.16e WMAN by burst scheduling. In / Proceedings of IEEE GLOBECOM 鈥?6 (pp. 1鈥?).
    14. Lei, K., & Tsang, D. H. K. (2006). Performance study of power saving classes of type I and II in IEEE 802.16e. In / Proceedings of IEEE LCN 鈥?6 (pp. 20鈥?7).
    15. Lei, K., & Tsang, D. H. K. (2007). Optimal selection of power saving classes in IEEE 802.16e. In / Proceedings of IEEE WCNC 鈥?7 (pp. 1836鈥?841).
    16. Baker A. M., Ng C. K., Noordin N. K., Mustafa A., Akbari A. (2010) An optimized energy saving mechanism in IEEE 802.16e Mobile WiMAX systems. Journal of High Speed Networks 17(3): 147鈥?61
    17. Jeong D. G., Jeon W. S. (2006) Performance of adaptive sleep period control for wireless communications systems. IEEE Transactions on Wireless Communications 5(11): 3012鈥?016 CrossRef
    18. Kim M. G., Choi J. Y., Kang M. (2008) Adaptive power saving mechanism considering the request period of each initiation of awakening in the IEEE 802.16e system. IEEE Communications Letters 12(2): 106鈥?08 CrossRef
    19. Lee J. R., Cho D. H. (2007) Performance evaluation of energy saving mechanism based on probabilistic sleep interval decision algorithm in IEEE 802.16e. IEEE Transactions on Vehicular Technology 56(4): 1773鈥?780 CrossRef
    20. Nejatian, N. M. P., & Nayebi, M. M. (2007). Evaluating the effect of non-Poisson traffic patterns on power consumption of sleep mode in the IEEE 802.16e MAC. In / Proceedings of IEEE WOCN 鈥?7 (pp. 1鈥?).
    21. Nga D. T. T., Kim M. G., Kang M. (2007) Delay-guaranteed energy saving algorithm for the delay-sensitive applications in IEEE 802.16e systems. IEEE Transactions on Consumer Electronics 53(4): 1339鈥?347 CrossRef
    22. Vatsa, O. J., Raj, M., Ritesh, K., Panigrahy, D., & Das, D. (2007). Adaptive power saving algorithm for mobile subscriber station in 802.16e. In / Proceedings of IEEE COMSWARE 鈥?7 (pp. 1鈥?).
    23. Xiao Y. (2005) Energy saving mechanism in the IEEE 802.16e wireless MAN. IEEE Communications Letters 9(7): 595鈥?97 CrossRef
    24. Xiao, J. F., Zou, S. H., Ren, B., & Cheng, S. D. (2006). WLC17-6: An enhanced energy saving mechanism in IEEE 802.16e. In / Proceedings of IEEE GLOBECOM 鈥?6 (pp. 1鈥?).
    25. Xiao, Y. (2006). Performance analysis of an energy saving mechanism in the IEEE 802.16e wireless MAN. In / Proceedings of IEEE CCNC 鈥?6 (pp. 406鈥?10).
    26. Xu, F. M., Zhong, W., & Zhou, Z. (2006). A novel adaptive energy saving mode in IEEE 802.16e system. In / Proceedings of IEEE MILCOM 鈥?6 (pp. 1鈥?).
    27. Zhu, S. Q., & T. L. Wang (2007). Enhanced power efficient sleep mode operation for IEEE 802.16e based WiMAX. In / Proceedings of IEEE MWS 鈥?7 (pp. 43鈥?7).
    28. Zhu, S. Q., Ma, X. Y., & Wang, L. J. (2007). A delay-aware auto sleep mode operation for power saving WiMAX. In / Proceedings of IEEE ICCCN 鈥?7 (pp. 997鈥?001).
    29. Lee, N. H., & Bahk, S. (2005). MAC sleep mode control considering downlink traffic pattern and mobility. In / Proceedings of IEEE VTC 鈥?5 (pp. 2076鈥?080).
    30. Lee, J. W., Jeon, W. S., & Jeong, D. G. (2006). Power saving with p-persistent sleep decision for ubiquitous mobile communications. In / Proceedings of IEEE VTC 鈥?6 (pp. 633鈥?37).
    31. Burgstahler, L., & Neubauer, M. (2002). New modifications of the exponential moving average algorithm for bandwidth estimation. In / Proceedings of ITC specialist seminar 鈥?2.
  • 作者单位:Huei-Wen Ferng (1)
    Hong-Yu Li (1)

    1. Department of Computer Science and Information Engineering, National Taiwan University of Science and Technology, Taipei, 106, Taiwan
  • ISSN:1572-834X
文摘
Three predictive and dynamic sleep time planning (PDSTP) energy-efficient mechanisms are proposed in this paper to simultaneously improve energy efficiency and packet delay for IEEE 802.16e. To estimate the time instant when a mobile station (MS) should wake up for receiving downlink packets, a prediction method is designed. With the predicted time instant, an MS is then allowed to sleep as much as possible using multiple maximum sleep intervals followed by a smaller sleep interval before the predicted time instant. After the predicted time instant, a few smaller sleep intervals with a trend of constant level (CL), exponential decrease (ED), or linear decrease (LD) can be further arranged. To react to the outlier of prediction, exponential increase for sleep intervals can be extended. The combination of the aforementioned designs then forms our three proposed mechanisms, namely, PDSTP-CL, PDSTP-ED, and PDSTP-LD. Via simulations, we show that PDSTP-CL not only performs better than PDSTP-ED and PDSTP-LD under general situations but also outperforms the standard sleep mode operation of the type-I power saving class (PSC-I) in IEEE 802.16e and the exponential sleep time backoff mechanism (ESTBM) in the literature in terms of energy efficiency and packet delay.

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