DocumentCode :
804628
Title :
Algebraic properties of space-time block codes in intersymbol interference multiple-access channels
Author :
Diggavi, Suhas N. ; Al-Dhahir, Naofal ; Calderbank, A.R.
Author_Institution :
AT&T Shannon Lab., Florham Park, NJ, USA
Volume :
49
Issue :
10
fYear :
2003
Firstpage :
2403
Lastpage :
2414
Abstract :
In this paper, we study the multiple-access channel where users employ space-time block codes (STBC). The problem is formulated in the context of an intersymbol interference (ISI) multiple-access channel which occurs for transmission over frequency-selective channels. The algebraic structure of the STBC is utilized to design joint interference suppression, equalization, and decoding schemes. Each of the K users transmits using Mt=2 transmit antennas and a time-reversed STBC suitable for frequency-selective channels. We first show that a diversity order of 2Mr(ν+1) is achievable at full transmission rate for each user, when we have Mr receive antennas, channel memory of ν, and an optimal multiuser maximum-likelihood (ML) decoder is used. Due to the decoding complexity of the ML detector we study the algebraic structure of linear multiuser detectors which utilize the properties of the STBC. We do this both in the transform (D-domain) formulation and when we impose finite block-length constraints (matrix formulation). The receiver is designed to utilize the algebraic structure of the codes in order to preserve the block quaternionic structure of the equivalent channel for each user. We also explore some algebraic properties of D-domain quaternionic matrices and of quaternionic circulant block matrices that arise in this study.
Keywords :
block codes; diversity reception; equalisers; interference suppression; intersymbol interference; maximum likelihood decoding; multi-access systems; multiuser channels; space-time codes; D-domain quaternionic matrices; ISI multiple-access channel; ML decoder; STBC; algebraic properties; algebraic structure; block quaternionic structure; decoding; decoding complexity; diversity; equalization; finite block-length constraints; frequency-selective channels; intersymbol interference multiple-access channels; linear multiuser detectors; matrix formulation; multiuser maximum-likelihood decoder; quaternionic circulant block matrices; receive antennas; space-time block codes; transform formulation; Block codes; Detectors; Frequency; Intersymbol interference; Laboratories; Maximum likelihood decoding; Multiuser detection; Receiving antennas; Transmitters; Transmitting antennas;
fLanguage :
English
Journal_Title :
Information Theory, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9448
Type :
jour
DOI :
10.1109/TIT.2003.817833
Filename :
1237129
Link To Document :
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