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An Overdetermined System for Improved Autocorrelation Based Spectral Moment Estimator PerformanceAutocorrelation based spectral moment estimators are typically derived using the Fourier transform relationship between the power spectrum and the autocorrelation function along with using either an assumed form of the autocorrelation function, e.g., Gaussian, or a generic complex form and applying properties of the characteristic function. Passarelli has used a series expansion of the general complex autocorrelation function and has expressed the coefficients in terms of central moments of the power spectrum. A truncation of this series will produce a closed system of equations which can be solved for the central moments of interest. The autocorrelation function at various lags is estimated from samples of the random process under observation. These estimates themselves are random variables and exhibit a bias and variance that is a function of the number of samples used in the estimates and the operational signal-to-noise ratio. This contributes to a degradation in performance of the moment estimators. This dissertation investigates the use autocorrelation function estimates at higher order lags to reduce the bias and standard deviation in spectral moment estimates. In particular, Passarelli's series expansion is cast in terms of an overdetermined system to form a framework under which the application of additional autocorrelation function estimates at higher order lags can be defined and assessed. The solution of the overdetermined system is the least squares solution. Furthermore, an overdetermined system can be solved for any moment or moments of interest and is not tied to a particular form of the power spectrum or corresponding autocorrelation function. As an application of this approach, autocorrelation based variance estimators are defined by a truncation of Passarelli's series expansion and applied to simulated Doppler weather radar returns which are characterized by a Gaussian shaped power spectrum. The performance of the variance estimators determined from a closed system is shown to improve through the application of additional autocorrelation lags in an overdetermined system. This improvement is greater in the narrowband spectrum region where the information is spread over more lags of the autocorrelation function. The number of lags needed in the overdetermined system is a function of the spectral width, the number of terms in the series expansion, the number of samples used in estimating the autocorrelation function, and the signal-to-noise ratio. The overdetermined system provides a robustness to the chosen variance estimator by expanding the region of spectral widths and signal-to-noise ratios over which the estimator can perform as compared to the closed system.
Document ID
19970022555
Acquisition Source
Langley Research Center
Document Type
Contractor Report (CR)
Authors
Keel, Byron M.
(Clemson Univ. SC United States)
Date Acquired
September 6, 2013
Publication Date
December 17, 1996
Subject Category
Electronics And Electrical Engineering
Report/Patent Number
TR-22
TR-121796-5604P
NASA-CR-204830
NAS 1.26:204830
Report Number: TR-22
Report Number: TR-121796-5604P
Report Number: NASA-CR-204830
Report Number: NAS 1.26:204830
Accession Number
97N23073
Funding Number(s)
CONTRACT_GRANT: NAG1-1634
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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