Performance of Transmit Antenna Selection and Maximal-Ratio Combining in Dual Hop Amplify-and-Forward Relay Network over Nakagami-m Fading Channels

被引:30
作者
Yilmaz, Ahmet [1 ]
Kucur, Oguz [1 ]
机构
[1] Gebze Inst Technol, Dept Elect Engn, TR-41400 Gebze, Kocaeli, Turkey
关键词
Relayed transmission; MIMO; Transmit antenna selection; Maximal ratio combining; Nakagami-m fading; Diversity order; BER ANALYSIS; DIVERSITY; GAIN; PROBABILITY; SYSTEMS; ORDER;
D O I
10.1007/s11277-011-0391-7
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
In this paper, we study end-to-end performance of transmit antenna selection (TAS) and maximal ratio combining (MRC) in dual hop amplify-and-forward relay network in flat and asymmetric Nakagami-m fading channels. In the network, source and destination communicate by the help of single relay and source-destination link is not available. Source and destination are equipped with multiple antennas, and relay is equipped with single antenna. TAS and MRC are used for transmission at the source and reception at the destination, respectively. The relay simply amplifies and forwards the signal sent by the source to the destination by using channel state information (CSI) based gain or fixed gain. By considering relay location, for CSI based and fixed relay gains, we derive closed-form cumulative distribution function, moments and moment generating function of end-to-end signal-to-noise ratio, and closed-form symbol error probability expression. Moreover, asymptotical outage probability and symbol error probability expressions are also derived for both CSI based and fixed gains to obtain diversity order of the network. Analytical results are validated by the Monte Carlo simulations. Results show that diversity order is minimum of products of fading parameter and number of antennas at the end in each hop. In addition, for optimum performance the relay must be closer to the source when the diversity order of the first hop is smaller than or equal to that of the second hop.
引用
收藏
页码:485 / 503
页数:19
相关论文
共 40 条
[1]   A simple transmit diversity technique for wireless communications [J].
Alamouti, SM .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 1998, 16 (08) :1451-1458
[2]  
[Anonymous], 2001, Principles of Mobile Communications
[3]  
[Anonymous], Probability, Random Variables and Stochastic Processes
[4]   Performance analysis of combined transmit selection diversity and receive generalized selection combining in Rayleigh fading channels [J].
Cai, XD ;
Giannakis, GB .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2004, 3 (06) :1980-1983
[5]   Foreword [J].
Chen, Sinn-wen ;
Chada, Srinivas ;
Chen, Chih-ming ;
Flandorfer, Hans ;
Lindsay Greer, A. ;
Lee, Jae-Ho ;
Zeng, Kejun ;
Suganuma, Katsuaki .
JOURNAL OF ELECTRONIC MATERIALS, 2009, 38 (01) :1-1
[6]   Analysis of transmit antenna selection/maximal-ratio combining in Rayleigh fading channels [J].
Chen, Z ;
Yuan, JH ;
Vucetic, B .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2005, 54 (04) :1312-1321
[7]  
David H. A., 2003, ORDER STAT
[8]   Performance Analysis of Amplify-and-Forward MIMO Relay Networks with Transmit Antenna Selection over Nakagami-m Channels [J].
Duong, Trung Q. ;
Zepemick, Hans-Jurgen ;
Tsiftsis, Theodoros A. ;
Vo Nguyen Quoc Bao .
2010 IEEE 21ST INTERNATIONAL SYMPOSIUM ON PERSONAL INDOOR AND MOBILE RADIO COMMUNICATIONS (PIMRC), 2010, :368-372
[9]   Comparison of diversity combining techniques for Rayleigh-fading channels [J].
Eng, T ;
Kong, N ;
Milstein, LB .
IEEE TRANSACTIONS ON COMMUNICATIONS, 1996, 44 (09) :1117-1129
[10]   On Limits of Wireless Communications in a Fading Environment when Using Multiple Antennas [J].
Foschini G.J. ;
Gans M.J. .
Wireless Personal Communications, 1998, 6 (3) :311-335