Title :
Unitary Space–Time Constellation Design Based on the Chernoff Bound of the Pairwise Error Probability
Author :
Wu, Yi ; Ruotsalainen, Keijo ; Juntti, Markku
Author_Institution :
Dept. of Inf. & Commun. Technol., Univ. of Agder, Grimstad
Abstract :
Unitary space-time constellation design is considered for noncoherent multiple-antenna communications, where neither the transmitter nor the receiver knows the fading coefficients of the channel. By employing the Clarke´s subdifferential theorem of the sum of the kappa largest singular values of a unitary matrix, we present a numerical optimization procedure for finding unitary space-time signal constellations of any dimension. The Chernoff bound of the pairwise error probability is used directly as a design criterion. The constellations are found by performing gradient descent search on a family ldquosurrogaterdquo functions that converge to the maximum pairwise error probability. The complexity of the search procedure increases with the dimension and the size of the constellation, but it can be considered to be acceptable for an off-line design procedure. Since the designed constellations are unstructured, and, thus, require an exhaustive search over all codewords in decoding, their main practical value is to serve as constellation design performance benchmarks. We compare the performance of the new constellations to that of some other well-known constellations. Computer simulation results illustrate typically about 0.4-3.5 dB performance gains.
Keywords :
antenna arrays; error statistics; fading channels; matrix algebra; optimisation; Chernoff bound; Clarke subdifferential theorem; Pairwise Error Probability; constellation design performance benchmarks; fading channel; noncoherent multiple-antenna communications; numerical optimization procedure; unitary space-time constellation design; Antenna theory; Antennas and propagation; Constellation diagram; Decoding; Fading; Pairwise error probability; Receiving antennas; Transmitters; Transmitting antennas; Wireless communication; Fading channel; multiple antennas; noncoherent communications; unitary constellations;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2008.926310