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Calculation of power spectrums from digital time series with missing data pointsTwo algorithms are developed for calculating power spectrums from the autocorrelation function when there are missing data points in the time series. Both methods use an average sampling interval to compute lagged products. One method, the correlation function power spectrum, takes the discrete Fourier transform of the lagged products directly to obtain the spectrum, while the other, the modified Blackman-Tukey power spectrum, takes the Fourier transform of the mean lagged products. Both techniques require fewer calculations than other procedures since only 50% to 80% of the maximum lags need be calculated. The algorithms are compared with the Fourier transform power spectrum and two least squares procedures (all for an arbitrary data spacing). Examples are given showing recovery of frequency components from simulated periodic data where portions of the time series are missing and random noise has been added to both the time points and to values of the function. In addition the methods are compared using real data. All procedures performed equally well in detecting periodicities in the data.
Document ID
19810016294
Acquisition Source
Legacy CDMS
Document Type
Preprint (Draft being sent to journal)
Authors
Murray, C. W., Jr.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Date Acquired
September 4, 2013
Publication Date
December 1, 1980
Subject Category
Statistics And Probability
Report/Patent Number
NASA-TM-82016
Report Number: NASA-TM-82016
Accession Number
81N24829
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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