DocumentCode :
1324934
Title :
DMT Optimality of LR-Aided Linear Decoders for a General Class of Channels, Lattice Designs, and System Models
Author :
Jaldén, Joakim ; Elia, Petros
Author_Institution :
Inst. of Commun. & Radio-Freq. Eng., Tech. Univ. of Vienna, Vienna, Austria
Volume :
56
Issue :
10
fYear :
2010
Firstpage :
4765
Lastpage :
4780
Abstract :
This paper identifies the first general, explicit, and nonrandom MIMO encoder-decoder structures that guarantee optimality with respect to the diversity-multiplexing tradeoff (DMT), without employing a computationally expensive maximum-likelihood (ML) receiver. Specifically, the work establishes the DMT optimality of a class of regularized lattice decoders, and more importantly the DMT optimality of their lattice-reduction (LR)-aided linear counterparts. The results hold for all channel statistics, for all channel dimensions, and most interestingly, irrespective of the particular lattice-code applied. As a special case, it is established that the LLL-based LR-aided linear implementation of the MMSE-GDFE lattice decoder facilitates DMT optimal decoding of any lattice code at a worst-case complexity that grows at most linearly in the data rate. This represents a fundamental reduction in the decoding complexity when compared to ML decoding whose complexity is generally exponential in the rate. The results´ generality lends them applicable to a plethora of pertinent communication scenarios such as quasi-static MIMO, MIMO-OFDM, ISI, cooperative-relaying, and MIMO-ARQ channels, in all of which the DMT optimality of the LR-aided linear decoder is guaranteed. The adopted approach yields insight, and motivates further study, into joint transceiver designs with an improved SNR gap to ML decoding.
Keywords :
MIMO communication; automatic repeat request; codecs; diversity reception; multiplexing; DMT; LR-aided linear decoders; MIMO encoder-decoder structures; MIMO-ARQ channels; MIMO-OFDM; MMSE-GDFE lattice decoder; diversity-multiplexing tradeoff; lattice designs; maximum-likelihood receiver; worst-case complexity; Complexity theory; Decoding; Encoding; Fading; Lattices; MIMO; Receivers; Diversity-multiplexing tradeoff; lattice decoding; lattice reduction; linear decoding; multiple-input multiple-output (MIMO); regularization; space-time coders-decoders;
fLanguage :
English
Journal_Title :
Information Theory, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9448
Type :
jour
DOI :
10.1109/TIT.2010.2059493
Filename :
5571887
Link To Document :
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