DocumentCode :
1243986
Title :
Space-time-coded CDMA uplink transmission with MUI-free reception
Author :
Wavegedara, K.C.B. ; Djonin, Dejan V. ; Bhargava, Vijay K.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of British Columbia, Vancouver, BC, Canada
Volume :
4
Issue :
6
fYear :
2005
Firstpage :
3095
Lastpage :
3105
Abstract :
The problem of adopting space-time block coding (STBC) in the uplink of direct sequence code division multiple access (DS-CDMA) systems is addressed. A novel system architecture is proposed for space-time (ST)-coded uplink transmissions over multipath fading channels with multiple user interference (MUI)-free reception. This proposed system is a combination of single-carrier time-reversal zero-padding (SC-TR-ZP)-based STBC with chip-interleaved block-spread (CIBS)-CDMA. Simulation results show that a substantial performance improvement can be achieved by adopting ST coding compared to the original CIBS-CDMA scheme without ST coding. Optimal maximum likelihood sequence estimation (MLSE) may be computationally prohibitive for long channels and/or with high-level modulation. Hence, the performance of different decision feedback sequence estimation (DFSE) schemes is investigated for the proposed ST-coded uplink system. In the case of whitened DFSE (WDFSE), a linear prediction (LP)-based approach is adapted for designing a whitening prefilter. Furthermore, a new scheme, which is a combination of linear equalization (LE) and modified unwhitened DFSE (MUDFSE) is proposed. The proposed combined LE-MUDFSE (Comb. LE-MUDFSE) scheme is very attractive as error-floor behavior appearing in other unwhitened DFSE schemes is eliminated. The simulation results indicate that a substantial performance improvement over the minimum mean-square error (MMSE) equalizer can be achieved by using either Comb. LE-MUDFSE scheme or WDFSE scheme.
Keywords :
block codes; code division multiple access; equalisers; fading channels; filtering theory; least mean squares methods; linear predictive coding; maximum likelihood estimation; multipath channels; multiuser channels; radio links; radiofrequency interference; space-time codes; spread spectrum communication; MLSE; chip-interleaved block-spread; direct sequence code division multiple access systems; ingle-carrier time-reversal zero-padding; linear equalization; linear prediction-based approach; maximum likelihood sequence estimation; minimum mean-square error equalizer; multipath fading channels; multiple user interference-free reception; space-time block coding; space-time-coded CDMA uplink transmission; unwhitened decision feedback sequence estimation; whitening prefilter; Block codes; Decision feedback equalizers; Delay estimation; Diversity methods; Fading; Intersymbol interference; Maximum likelihood estimation; Multiaccess communication; Tail; Transmitting antennas; Block spreading; code-division multiple access (CDMA); decision-feedback sequence estimation (DFSE); multipath fading; space–time block coding (STBC); whitening prefiltering;
fLanguage :
English
Journal_Title :
Wireless Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1276
Type :
jour
DOI :
10.1109/TWC.2005.858366
Filename :
1545883
Link To Document :
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