Title :
Generalized Design of Low-Complexity Block Diagonalization Type Precoding Algorithms for Multiuser MIMO Systems
Author :
Keke Zu ; de Lamare, Rodrigo C. ; Haardt, Martin
Author_Institution :
Univ. of York, York, UK
Abstract :
Block diagonalization (BD) based precoding techniques are well-known linear transmit strategies for multiuser MIMO (MU-MIMO) systems. By employing BD-type precoding algorithms at the transmit side, the MU-MIMO broadcast channel is decomposed into multiple independent parallel single user MIMO (SU-MIMO) channels and achieves the maximum diversity order at high data rates. The main computational complexity of BD-type precoding algorithms comes from two singular value decomposition (SVD) operations, which depend on the number of users and the dimensions of each user´s channel matrix. In this work, low-complexity precoding algorithms are proposed to reduce the computational complexity and improve the performance of BD-type precoding algorithms. We devise a strategy based on a common channel inversion technique, QR decompositions, and lattice reductions to decouple the MU-MIMO channel into equivalent SU-MIMO channels. Analytical and simulation results show that the proposed precoding algorithms can achieve a comparable sum-rate performance as BD-type precoding algorithms, substantial bit error rate (BER) performance gains, and a simplified receiver structure, while requiring a much lower complexity.
Keywords :
MIMO communication; channel coding; computational complexity; diversity reception; error statistics; precoding; singular value decomposition; telecommunication channels; BD-type precoding algorithms; BER performance; MU-MIMO channel; MU-MIMO systems; QR decompositions; SU-MIMO channels; SVD operations; bit error rate; common channel inversion technique; computational complexity; generalized design; low-complexity block diagonalization; low-complexity precoding algorithms; maximum diversity order; multiple independent parallel single user MIMO; multiuser MIMO systems; receiver structure; singular value decomposition; sum-rate performance; user channel matrix; Algorithm design and analysis; Bit error rate; Computational complexity; Lattices; MIMO; Nickel; Multiuser MIMO (MU-MIMO); block diagonalization (BD); lattice reduction (LR); low-complexity; regularized block diagonalization (RBD);
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2013.090513.130038