DocumentCode :
327519
Title :
Detecting quadratic-type nonlinearities of random processes in the presence of additive noise
Author :
Galushko, Vladimir G.
Author_Institution :
Inst. of Radiophys. & Electron., Acad. of Sci., Kharkov, Ukraine
Volume :
1
fYear :
1998
fDate :
2-5 Jun 1998
Firstpage :
462
Abstract :
The problem of detecting nonlinear effects often arises in investigations of different physical, engineering and other systems. These can be, for example, nonlinear distortions in radio devices, coupling of waves in nonlinear media, or nonlinear mechanisms of their generation. A powerful tool for solving this problem is the use of cumulants or their associated Fourier transforms, known as polyspectra. However, the estimation of cumulants (or polyspectra) of real processes (especially for fairly long realizations) requires considerable computation resources, in particular, RAM. The present paper illustrates the potentials of the so called “1½D-spectra”, Γ(ω), for solving the problem of detecting weak quadratic-type nonlinearities of random processes in the presence of additive noise. This technique is a particular case of the bispectral analysis being, however, it is much easier to use
Keywords :
Gaussian processes; higher order statistics; random noise; random processes; signal detection; spectral analysis; 1½D-spectra; Fourier transforms; additive noise; bispectral analysis; cumulants; engineering systems; nonlinear distortions; nonlinear effects; nonlinear mechanisms; nonlinear media; polyspectra; quadratic-type nonlinearities detection; radio devices; random Gaussian processes; random noise; Additive noise; Algorithm design and analysis; Couplings; Electromagnetic analysis; Filtering theory; Filters; Nonlinear distortion; Radio astronomy; Random processes; Systems engineering and theory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mathematical Methods in Electromagnetic Theory, 1998. MMET 98. 1998 International Conference on
Conference_Location :
Kharkov
Print_ISBN :
0-7803-4360-3
Type :
conf
DOI :
10.1109/MMET.1998.710012
Filename :
710012
Link To Document :
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