DocumentCode
1789925
Title
Ergodic capacity of cognitive TAS/GSC relaying in Nakagami-m fading channels
Author
Yansha Deng ; Lifeng Wang ; Elkashlan, M. ; Kyeong Jin Kim ; Duong, T.Q.
Author_Institution
Sch. of Electron. Eng. & Comput. Sci., Queen Mary Univ. of London, London, UK
fYear
2014
fDate
10-14 June 2014
Firstpage
5348
Lastpage
5353
Abstract
We examine the impact of transmit antenna selection with receive generalized selection combining (TAS/GSC) for cognitive decode-and-forward (DF) relaying in Nakagami-m fading channels. We select a single transmit antenna at the secondary transmitter which maximizes the receive signal-to-noise ratio (SNR) and combine a subset of receive antennas with the largest SNRs at the secondary receiver. In an effort to assess the performance, we first derive the probability density function and cumulative distribution function of the end-to-end SNR using the moment generating function. We then derive new exact closed-form expression for the ergodic capacity. More importantly, by deriving the asymptotic expression for the high SNR approximation of the ergodic capacity, we gather deep insights into the high SNR slope and the power offset. Our results show that the high SNR slope is 1/2 under the proportional interference power constraint. Under the fixed interference power constraint, the high SNR slope is zero.
Keywords
Nakagami channels; cognitive radio; decode and forward communication; fading channels; probability; radiofrequency interference; receiving antennas; relay networks (telecommunication); transmitting antennas; DF relaying; Nakagami-m fading channels; SNR; closed-form expression; cognitive TAS-GSC relaying; cognitive decode-and-forward; cumulative distribution function; ergodic capacity; fixed interference power constraint; probability density function; proportional interference power constraint; receive antennas; receive signal-to-noise ratio; secondary receiver; secondary transmitter; transmit antenna selection; Approximation methods; Closed-form solutions; Fading; Interference; Receiving antennas; Signal to noise ratio; Wireless communication;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications (ICC), 2014 IEEE International Conference on
Conference_Location
Sydney, NSW
Type
conf
DOI
10.1109/ICC.2014.6884171
Filename
6884171
Link To Document