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A NOVEL LINK ADAPTATION SCHEME TO ENHANCE PERFORMANCE OF IEEE 802.11G WIRELESS LAN
作者姓名:Chen  Liquan  HuAiqun
作者单位:Department of Radio Engineering, Southeast University, Nanjing 210096, China
基金项目:Partly supported by the National Hi-Tech Research and Development Program of China (863 Program) (No.2003AA143040).
摘    要:A novel link adaptation scheme using linear Auto Regressive (AR) model channel estimation algorithm to enhance the performance of auto rate selection mechanism in IEEE 802.11g is proposed. This scheme can overcome the low efficiency caused by time interval between the time when Received Signal Strength (RSS) is measured and the time when rate is selected. The best rate is selected based on data payload length, frame retry count and the estimated RSS, which is estimated from recorded RSSs. Simulation results show that the proposed scheme enhances mean throughput performance up to 7%, in saturation state, and up to 24% in finite load state compared with those non-estimation schemes, performance enhancements in average drop rate and average number of transmission attempts per data frame delivery also validate the effectiveness of the proposed schelne.

关 键 词:无线局域网  WLAN  信道估计  自动回归模型  RSS
收稿时间:2004-07-27
修稿时间:2005-06-15

A novel link adaptation scheme to enhance performance of IEEE 802.11g wireless LAN
Chen Liquan HuAiqun.A NOVEL LINK ADAPTATION SCHEME TO ENHANCE PERFORMANCE OF IEEE 802.11G WIRELESS LAN[J].Journal of Electronics,2006,23(3):350-354.
Authors:Liquan Chen  Aiqun Hu
Affiliation:Department of Radio Engineering, Southeast University, Nanjing 210096, China
Abstract:A novel link adaptation scheme using linear Auto Regressive (AR) model channel estimation algorithm to enhance the performance of auto rate selection mechanism in IEEE 802.11g is proposed. This scheme can overcome the low efficiency caused by time interval between the time when Received Signal Strength (RSS) is measured and the time when rate is selected. The best rate is selected based on data pay load length, frame retry count and the estimated RSS, which is estimated from recorded RSSs. Simulation results show that the proposed scheme enhances mean throughput performance up to 7%, in saturation state, and up to 24% in finite load state compared with those non-estimation schemes, performance enhancements in average drop rate and average number of transmission attempts per data frame delivery also validate the effectiveness of the proposed scheme.
Keywords:Wireless Local Area Network (WLAN)  Link adaptation  Channel estimation  Auto ratc selection  Received Signal Strength (RSS)
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