Title :
Noise-predictive decision-feedback detection for multiple-input multiple-output channels
Author :
Waters, Deric W. ; Barry, John R.
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
5/1/2005 12:00:00 AM
Abstract :
The decision-feedback (DF) detector is a nonlinear detection strategy for multiple-input multiple-output (MIMO) channels that can significantly outperform a linear detector, especially when the order in which the inputs are detected is optimized according to the so-called Bell Labs Layered Space-Time (BLAST) ordering. The DF detector may be implemented as the cascade of a linear detector, which mitigates interference at the expense of correlating the noise, followed by a noise predictor, which exploits the correlation in the noise to reduce its variance. With this architecture, existing linear detectors can be easily upgraded to DF detectors. We propose a low-complexity algorithm for determining the BLAST ordering that is facilitated by the noise-predictive architecture. The resulting ordered noise-predictive DF detector requires fewer computations than previously reported ordered-DF algorithms. We also propose and derive the ordered noise-predictive minimum-mean-squared-error DF detector and show how to determine its BLAST ordering with low complexity.
Keywords :
MIMO systems; computational complexity; interference suppression; least mean squares methods; noise; optimisation; prediction theory; signal detection; Bell Labs layered space-time ordering; MIMO detection; low-complexity algorithm; minimum-mean-squared-error method; multiple-input multiple-output channel; noise-predictive architecture; noise-predictive decision-feedback detection; nonlinear detection strategy; optimization; successive interference cancellation; Computer architecture; Detectors; Error probability; Feedback; Interference; MIMO; Multiaccess communication; Noise cancellation; Noise reduction; Object detection; Decision feedback; MIMO detection; V-BLAST; noise prediction; ordering; reduced-complexity detection; successive interference cancellation;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2005.845474