DocumentCode :
768943
Title :
Diversity reception through complex non-Gaussian, noisy channels
Author :
Biyari, K.H. ; Lindsey, W.C.
Author_Institution :
Dept. of Electr. Eng., King Fahd Univ. of Pet. & Miner., Dhahran, Saudi Arabia
Volume :
43
Issue :
38020
fYear :
1995
Firstpage :
318
Lastpage :
328
Abstract :
A unified treatment is presented for the problem of detecting binary data transmitted over an L-fold diversity complex non-Gaussian channel further disturbed by additive white Gaussian noise. The data is extracted using a quadratic form detector driven by the outputs from a cross-correlation detector matched to the transmitted signals. By employing a probability density function (PDF) expansion technique, the bit error probability is decomposed into a Gaussian and a non-Gaussian component. Our results, being valid for the doubly dispersive (space and time) channels, are reduced to expressions which characterize the performance for other channel types, viz., the wide-sense stationary uncorrelated scattering (WSSUS), the temporally-dispersive spatially-nondispersive, the temporally-nondispersive spatially-dispersive, and the totally nondispersive channel. A coherence matrix is defined which allows us to treat three types of diversity reception, vis., noncoherent, partially coherent, and coherent detection with a noisy phase reference. Detailed performance analysis of the noncoherent case is presented and used to numerically evaluate system performance over a non-Gaussian channel modeled by the Middleton (1977) class A PDF.<>
Keywords :
Gaussian noise; correlation methods; digital communication; diversity reception; error statistics; fading; probability; signal detection; time-varying channels; white noise; PDF expansion technique; additive white Gaussian noise; binary data detection; bit error probability; coherence matrix; coherent detection; complex non-Gaussian noisy channels; cross-correlation detector; diversity reception; noisy phase reference; noncoherent reception; partially coherent reception; performance analysis; probability density function; quadratic form detector; space dispersive channels; temporally-dispersive spatially-nondispersive; temporally-nondispersive spatially-dispersive; time dispersive channels; time varying fading channels; totally nondispersive channel; wide-sense stationary uncorrelated scattering; Additive white noise; Coherence; Data mining; Detectors; Dispersion; Diversity reception; Error probability; Probability density function; Scattering; Space stations;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/26.380050
Filename :
380050
Link To Document :
بازگشت