Title :
Optimization of Amplify-and-Forward Multicarrier Two-Hop Transmission
Author :
Zhang, Wenyi ; Mitra, Urbashi ; Chiang, Mung
Author_Institution :
Ming Hsieh Dept. of Electr. Eng., Univ. of Southern California, Los Angeles, CA, USA
fDate :
5/1/2011 12:00:00 AM
Abstract :
In this paper, frequency-domain relay processing in a two-hop transmission system is investigated. The relay is constrained to be "non-regenerative"; that is, the relay is only allowed to perform a symbol-by-symbol memoryless transformation of its received signals. Multicarrier modulation, e.g., orthogonal frequency division multiplexing (OFDM), is utilized to convert each hop into a collection of non-interfering parallel subcarriers. In contrast to conventional scalar amplify-and-forward (AF) relays that scale all the subcarriers uniformly, it is possible to suppress relay noise and to exploit frequency-domain diversity by optimizing the relay scaling coefficients of different subcarriers jointly with subcarrier power allocation at the source transmitter. This type of scheme is denoted by multicarrier amplify-and-forward (MCAF). Although the end-to-end achievable rate of MCAF is a non-concave function of the power allocation vectors, its optimization is accomplished with an algorithm (O-MCAF) whose computational complexity grows only quadratically with the number of subcarriers, by utilizing a structural property of the problem. Further motivated by the problem structure, a suboptimal algorithm (WF-MCAF) with a linear complexity is also proposed, in which each hop performs waterfilling separately over a selected subset of subcarriers. For hops with a frequency-flat channel response, the maximum achievable rate is explicitly derived from the associated optimization. For hops with Rayleigh fading frequency-domain channel responses, numerical results are presented and it is illustrated that the proposed low-complexity WF-MCAF algorithm usually achieves near-optimal performance.
Keywords :
OFDM modulation; Rayleigh channels; amplify and forward communication; computational complexity; diversity reception; optimisation; OFDM; Rayleigh fading frequency-domain channel responses; amplify-and-forward multicarrier two-hop transmission; computational complexity; frequency-domain diversity; frequency-domain relay processing; maximum achievable rate; multicarrier amplify-and-forward system; multicarrier modulation; non-interfering parallel subcarriers; nonconcave function; optimization; orthogonal frequency division multiplexing; relay scaling coefficients; subcarrier power allocation; symbol-by-symbol memoryless transformation; Complexity theory; Equations; Frequency domain analysis; OFDM; Optimization; Relays; Resource management; Amplify-and-forward; multicarrier; nonconvex optimization; relay; two-hop transmission;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2011.022811.100017