DocumentCode
939473
Title
Estimation of a quadrature cross- correlation detector by analog, polarity-coincidence, and relay methods (Corresp.)
Author
Gupta, Ashok K. ; Birkemeier, William P.
Volume
30
Issue
6
fYear
1984
fDate
11/1/1984 12:00:00 AM
Firstpage
859
Lastpage
865
Abstract
The variance of the output of a cross-correlation detector, which is called a quadrature cross-correlation detector, is estimated. In this type of detector two zero-mean Gaussian quadrature processes
and
of a complex process
are cross correlated. This cross-correlation function
is estimated when neither of the two processes is distorted (the analog method), when both processes are distorted by a signum function before being cross correlated (the polarity coincidence method), and when one of the two processes is distorted by either a signum function or by a "comparator logic" function (the relay method). These quadrature cross-correlation detectors then are compared on the basis of output signal-to-noise ratio (s/n) and the clipping and relay losses are computed for two test quadrature processes of an Edgeworth-expansion-approximated power spectrum. Since
is zero, the four corresponding differential estimators, such as
are also estimated and are compared on the basis of s/n. For these differential estimators, the clipping and relay losses are computed for the two test processes. In all cases the exact expressions for the s/n are derived as a function of
. Some applications of these correlation detectors are outlined. The mathematical techniques employed here are thought to have potential usefulness for related problems in statistical communication theory and signal processing.
and
of a complex process
are cross correlated. This cross-correlation function
is estimated when neither of the two processes is distorted (the analog method), when both processes are distorted by a signum function before being cross correlated (the polarity coincidence method), and when one of the two processes is distorted by either a signum function or by a "comparator logic" function (the relay method). These quadrature cross-correlation detectors then are compared on the basis of output signal-to-noise ratio (s/n) and the clipping and relay losses are computed for two test quadrature processes of an Edgeworth-expansion-approximated power spectrum. Since
is zero, the four corresponding differential estimators, such as
are also estimated and are compared on the basis of s/n. For these differential estimators, the clipping and relay losses are computed for the two test processes. In all cases the exact expressions for the s/n are derived as a function of
. Some applications of these correlation detectors are outlined. The mathematical techniques employed here are thought to have potential usefulness for related problems in statistical communication theory and signal processing.Keywords
Correlators; Calculus; Computational modeling; Convergence; Detectors; Helium; Probability; Relays; Signal to noise ratio; Testing; USA Councils;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/TIT.1984.1056970
Filename
1056970
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