DocumentCode :
1342442
Title :
Analysis of equal-gain diversity with partially coherent fading signals
Author :
Najib, Muhieddin A. ; Prabhu, Vasant K.
Author_Institution :
Wireless Eng., Nortel Networks, Richardson, TX, USA
Volume :
49
Issue :
3
fYear :
2000
fDate :
5/1/2000 12:00:00 AM
Firstpage :
783
Lastpage :
791
Abstract :
An analytical technique based on Gram-Charlier series expansion is presented for the computation of the error probability of equal-gain combiner (EGC) with partially coherent fading signals. Imperfect carrier recovery is attributed to the random noise present in the carrier recovery loops. The resulting noisy phase references are assumed to satisfy Tikhonov distribution. The fades on the diversity branches are assumed to be slowly varying and statistically independent with Rayleigh-distributed envelopes. The error-rate performance of coherent and differentially coherent phase-shift keying (PSK) systems are compared and the phase precision requirement for a reliable coherent detection is computed. Detection loss caused by carrier phase errors is computed for several signal-to-noise ratio (SNR) reliability and bit error probability levels. It is demonstrated that the effect of carrier phase errors on the mean SNR is negligible compared to their effect on deep fades or small bit error probabilities. It is also shown that the carrier phase precision requirement can be reduced through signal combination
Keywords :
Rayleigh channels; differential phase shift keying; diversity reception; error statistics; multipath channels; quadrature phase shift keying; series (mathematics); signal detection; BPSK; Gram-Charlier series expansion; QPSK; Rayleigh-distributed envelopes; SNR reliability; Tikhonov distribution; bit error probabilities; bit error probability; carrier phase errors; carrier phase precision requirement; carrier recovery loops; coherent phase-shift keying; deep fades; detection loss; differentially coherent phase-shift keying; diversity branches fading; equal-gain combiner; equal-gain diversity; error-rate performance; imperfect carrier recovery; mean SNR; noisy phase references; partially coherent fading signals; phase precision; random noise; reliable coherent detection; signal combination; signal-to-noise ratio; slowly varying fading; statistically independent fading; Error probability; Fading; Frequency synchronization; Phase detection; Phase estimation; Phase locked loops; Phase noise; Phase shift keying; Signal analysis; Signal to noise ratio;
fLanguage :
English
Journal_Title :
Vehicular Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9545
Type :
jour
DOI :
10.1109/25.845098
Filename :
845098
Link To Document :
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