Enhancements of the Modified PCF in IEEE 802.11 WLANs


초록

The success of the IEEE 802.11 standard has prompted research into efficiency of the different medium access methods and their support for different traffic types. A modified version of the point coordination function (PCF) called modified PCF has been introduced as a way to improve the efficiency over the standard method. It has been shown through a simulation study and a mathematical analysis that channel utilization can be much improved compared to the standard, in case there is no so-called hidden station problem. However, under the hidden station problem, the efficiency of the modified PCF would obviously decrease. In this paper, some enhancements of the modified PCF are introduced. Firstly, we propose a retransmission process to allow frames involved in collisions to be retransmitted. Then, we propose a collision resolution mechanism to reduce the frame collision probability due to the hidden station problem. In addition, we propose a priority scheme to support prioritization for different traffic types such as interactive voice and video, and real-time data traffic in the modified PCF. To prevent the starvation of one low priority traffic, minimum transmission period is also guaranteed to each traffic type via an admission control algorithm. We study the performance of the modified PCF under the hidden station problem and the performance of the modified PCF with priority scheme through simulations. To illustrate the efficiency of the priority scheme, we therefore compare its simulation results with those of some standardized protocols: The distributed coordination function (DCF), the enhanced distributed channel access (EDCA), the PCF, and our previously proposed protocol: The modified PCF without priority scheme. The simulation results show that the increment of delay in the network due to the hidden station problem can be reduced using the proposed collision resolution mechanism. In addition, in a given scenario the modified PCF with priority scheme can provide better quality of service (QoS) support to different traffic types and also support a higher number of data stations than the previous proposals.

키워드

참고문헌

  1. 'Wireless LAN medium access control (MAC) and physical layer (PHY) specification,' IEEE Std. 802.11, 1999
  2. M. A. Visser and M. El Zarki, 'Voice and data transmission over an 802.11 wireless network,' in Proc. IEEE PIMRC'95, vol. 2, Toronto, Canada, Sept. 27-29, 1995, pp. 648-652 https://doi.org/10.1109/PIMRC.1995.480948
  3. A. Kanjanavapastit and B. Landfeldt, 'A modified point coordination function in IEEE 802.11 wireless LAN,' in Proc. IEEE ICON 2003, Sydney, Australia, Sept. 28-Oct. 1, 2003, pp. 561-566 https://doi.org/10.1109/ICON.2003.1266250
  4. A. Kanjanavapastit and B. Landfeldt, 'An analysis of a modified point coordination function in IEEE 802.11,' in Proc. IEEE PIMRC 2003, vol. 2, Beijing, China, Sept. 7-10, 2003, pp. 1732-1736 https://doi.org/10.1109/PIMRC.2003.1260411
  5. 'Wireless LAN medium access control (MAC) and physical layer (PHY) specifications: Medium access control (MAC) enhancements for quality of service (QoS),' IEEE Std. 802.11e/D5.0, 2003
  6. 'End-user multimedia QoS categories,' ITU-T Recommendation G.1010, 2001
  7. T. Suzuki and S. Tasaka, 'Performance evaluation of priority-based multimedia transmission with the PCF in an IEEE 802.11 standard wireless LAN,' in Proc. IEEE PIMRC 2001, vol. 2, San Diego, USA, Sept. 30-Oct. 3, 2001, pp. G-70-G-77 https://doi.org/10.1109/PIMRC.2001.965323
  8. Z. Liqiang and F. Changxin, 'M-PCF: Modified IEEE 802.11 PCF protocol implementing QoS,' Electron. Lett., vol. 38, pp. 1611-1613, Nov. 2002 https://doi.org/10.1049/el:20020973
  9. A. Ganz, A. Phonphoem, and Z. Ganz, 'Robust superpoll with chaining protocol for IEEE 802.11 wireless LANs in support of multimedia applications,' Wireless Networks, vol. 48, no.7, pp. 2245-2272, Sept. 1969
  10. I. Joe and S. Batsell, 'Reservation CSMA/CA for multimedia traffic over mobile ad-hoc networks,' in Proc. IEEE ICC 2000, vol. 3, June 2001, pp. 1714-1718 https://doi.org/10.1109/ICC.2000.853786
  11. S. C. Lo, G. Lee, and W. T. Chen, 'An efficient multipolling mechanism for IEEE 802.11 wireless LANs,' IEEE Trans. Comput., vol. 52, no. 6, pp. 764-778, June 2003 https://doi.org/10.1109/TC.2003.1204832
  12. T. Yoshimura, M. Jeong, H. Morikawa, and T. Aoyama, 'Wireless frame scheduling for adaptive service over IEEE 802.11,' in Proc. Int. Conf. Comput. Commun., Tokyo, Sept. 1999
  13. P. Brady, 'A model for generating on-off speech patterns in two-way conversations,' Bell Syst. Tech. J., vol. 7, pp. 65-73, 2001
  14. F. Fitzek and M. Reisslein, 'MPEG-4 and H.263 traces for network performance evaluation,' IEEE Network, vol. 15, no. 6, pp. 40-53, Nov./Dec. 2001 https://doi.org/10.1109/65.967596
  15. A. Grilo, M. Macedo, and M. Nunes, 'A scheduling algorithm for QoS support in IEEE802.11E networks,' IEEE Wireless Commun. Mag., pp. 36-43, June 2003