DocumentCode
777858
Title
Asymptotic analysis of the conventional decision feedback receiver in fading channels
Author
Djonin, Dejan V. ; Bhargava, Vijay K.
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Victoria, BC, Canada
Volume
2
Issue
5
fYear
2003
Firstpage
1066
Lastpage
1078
Abstract
Spectral efficiency presents the ultimate limit on data rate per unit bandwidth of a certain communication system. For direct-sequence code-division multiple access systems, the spectral efficiency has been derived in case of synchronous reception for optimal and linear multiuser receivers, flat-fading and nonfading environments, as well as single and multicell cellular networks. The most pervasive model employed in all these analyses is the large system random signature model. For the decision feedback receivers, previous research handled only the nonfading case while the case of fading channels remained unknown. This paper analyzes the spectral efficiency of the popular conventional decision feedback receiver (CDFR) in flat- and frequency-selective fading channels with and without power ordering. Results show that in the case of power ordering before cancellation and very large system loads, the spectral efficiency of this receiver in fading channels can be even larger than in the case of channels with no fading. We also discuss and identify optimal power control laws for the CDFR with and without power ordering. The power control law which equalizes single-user capacities in the case of power ordering is also discussed.
Keywords
cellular radio; code division multiple access; decision feedback equalisers; fading channels; multiuser channels; power control; radio networks; radio receivers; spread spectrum communication; telecommunication control; DS-SS; asymptotic analysis; cancellation; communication system; conventional decision feedback receiver; data rate per unit bandwidth; decision feedback receiver; decision feedback receivers; direct-sequence code-division multiple access systems; flat-fading channels; flat-fading environments; frequency-selective fading channels; linear multiuser receivers; multicell cellular networks; nonfading environments; optimal fading distribution; optimal multiuser receivers; optimal power control laws; power ordering; random signature model; research; single cellular networks; spectral efficiency; synchronous reception; system loads; Bandwidth; Code division multiplexing; Communication systems; Direct-sequence code-division multiple access; Fading; Feedback; Land mobile radio cellular systems; Multiaccess communication; Performance analysis; Power control;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2003.816778
Filename
1230142
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