Title :
Algorithm and implementation of the K-best sphere decoding for MIMO detection
Author :
Guo, Zhan ; Nilsson, Peter
Author_Institution :
Dept. of Electroscience, Lund Univ., Sweden
fDate :
3/1/2006 12:00:00 AM
Abstract :
K-best Schnorr-Euchner (KSE) decoding algorithm is proposed in this paper to approach near-maximum-likelihood (ML) performance for multiple-input-multiple-output (MIMO) detection. As a low complexity MIMO decoding algorithm, the KSE is shown to be suitable for very large scale integration (VLSI) implementations and be capable of supporting soft outputs. Modified KSE (MKSE) decoding algorithm is further proposed to improve the performance of the soft-output KSE with minor modifications. Moreover, a VLSI architecture is proposed for both algorithms. There are several low complexity and low-power features incorporated in the proposed algorithms and the VLSI architecture. The proposed hard-output KSE decoder and the soft-output MKSE decoder is implemented for 4×4 16-quadrature amplitude modulation (QAM) MIMO detection in a 0.35-μm and a 0.13-μm CMOS technology, respectively. The implemented hard-output KSE chip core is 5.76 mm2 with 91 K gates. The KSE decoding throughput is up to 53.3 Mb/s with a core power consumption of 626 mW at 100 MHz clock frequency and 2.8 V supply. The implemented soft-output MKSE chip can achieve a decoding throughput of more than 100 Mb/s with a 0.56 mm2 core area and 97 K gates. The implementation results show that it is feasible to achieve near-ML performance and high detection throughput for a 4×4 16-QAM MIMO system using the proposed algorithms and the VLSI architecture with reasonable complexity.
Keywords :
4G mobile communication; CMOS integrated circuits; MIMO systems; VLSI; maximum likelihood decoding; maximum likelihood detection; quadrature amplitude modulation; 0.13 micron; 0.35 micron; 100 MHz; 16-quadra-ture amplitude modulation; 2.8 V; 626 mW; CMOS technology; K-best Schnorr-Euchner decoding algorithm; MIMO detection; QAM; VLSI architecture; maximum-likelihood performance; modified KSE; multiple-input-multiple-output; soft-output MKSE chip; very large scale integration implementation; Amplitude modulation; CMOS technology; Clocks; Decoding; Energy consumption; Frequency; MIMO; Quadrature amplitude modulation; Throughput; Very large scale integration; Multiple-input–multiple-output (MIMO); Schnorr–Euchner algorithm; sphere decoder; very large scale integration (VLSI);
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2005.862402