DocumentCode
1308122
Title
Short-time Fourier analysis via optimal harmonic FIR filters
Author
Park, Sang Hwan ; Kwon, Wook Hyun ; Kwon, Oh Kyu ; Kim, Myung-Joon
Author_Institution
Sch. of Electr. Eng., Seoul Nat. Univ., South Korea
Volume
45
Issue
6
fYear
1997
fDate
6/1/1997 12:00:00 AM
Firstpage
1535
Lastpage
1542
Abstract
The Fourier coefficients (FCs) of quasiperiodic signals are assumed to be in random walk motion in order to represent a broader class. A state model for such quasiperiodic signals is derived. The optimal short-time estimate of the Fourier coefficients is obtained via the suggested optimal harmonic FIR filter (OHFF) based on this state-space signal model. The optimal harmonic FIR filter can be considered to be a generalization of the discrete Fourier transform (DFT) in the sense that it becomes the same as the DFT when the state model is for periodic signals and the filter length is equal to the order of the state model. The optimal harmonic FIR filter derived from the model, even with nonzero state noise and measurement noise, gives an exact harmonic estimate when an incoming signal is periodic and noiseless. It is shown by examples that the ability to suppress noise and the ability to resolve changes of the Fourier coefficients can be adjusted by the filter length and the noise covariance of the state model. Finally, the suggested scheme is compared with existing short-time Fourier analysis methods in a test signal that has time-varying Fourier coefficients
Keywords
FIR filters; Fourier analysis; discrete Fourier transforms; filtering theory; harmonic analysis; interference suppression; noise; random processes; spectral analysis; state-space methods; DFT; Fourier coefficients; OHFF; discrete Fourier transform; filter length; harmonic estimate; measurement noise; noise covariance; nonzero state noise; optimal harmonic FIR filters; optimal short-time estimate; periodic signal; quasiperiodic signals; random walk motion; short-time Fourier analysis; state-space signal model; time-varying Fourier coefficients; Discrete Fourier transforms; Finite impulse response filter; Harmonic analysis; Noise measurement; Power harmonic filters; Signal analysis; Signal processing; Signal resolution; State estimation; Testing;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/78.599995
Filename
599995
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