Title :
Beamforming of Amplify-and-Forward Relays under Individual Power Constraints
Author :
Kim, Seokkwon ; Park, Jung-Hyun ; Park, Dong-Jo
fDate :
9/1/2012 12:00:00 AM
Abstract :
This paper investigates a distributive beamforming scheme for the amplify-and-forward (AF) protocol when the second-order statistics, i.e., the mean and variance, of the channel state information (CSI) are available to relay networks. For maximizing the signal-to-noise ratio (SNR) of a destination node, we derive an analytical solution and the maximum achievable SNR when there is an individual power constraint for each relay. Based on the derived results, a greedy algorithm is proposed to sequentially find beamforming weights. It is shown that the complexity is linear to the number of relays per iteration, and the number of iterations is less than or equal to the number of relays. The necessary condition and sufficient condition are analyzed, respectively, for the proposed algorithm to be optimal. The derived analytical solution and the proposed algorithm generalize the previous results in the literature, which are optimal for particular cases. Simulation results show that the performance of the proposed algorithm is near to that achieved using semidefinite programming (SDP).
Keywords :
amplify and forward communication; array signal processing; convex programming; greedy algorithms; higher order statistics; protocols; AF protocol; CSI; SDP; SNR; amplify-and-forward relay beamforming; channel state information; destination node; distributive beamforming scheme; greedy algorithm; individual power constraint; relay networks; second-order statistics; semidefinite programming; signal-to-noise ratio; Array signal processing; Complexity theory; Indexes; Matrix decomposition; Relays; Signal to noise ratio; Silicon; Cooperative systems; beamforming; greedy approach; power constraint; quadratically constrained quadratic program; relays; semidefinite programming;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2012.120905