DocumentCode :
1128130
Title :
A Robust Interpolation Algorithm for Spectral Analysis
Author :
Mahata, Kaushik ; Fu, Minyue
Author_Institution :
Newcastle Univ., Newcastle
Volume :
55
Issue :
10
fYear :
2007
Firstpage :
4851
Lastpage :
4861
Abstract :
We propose a robust interpolation algorithm for model-based spectral analysis. Instead of estimating the spectral model directly, the so-called half spectrum, which has a one-to-one relationship with the spectrum through standard spectral decomposition, is estimated using an interpolation approach. The interpolation data consists of the values and the derivatives of the half spectrum function at a set of user-specified points, and can be easily estimated using an input-to-state filter. Our algorithm allows a large number of noisy interpolation data to be used to optimally fit a half spectrum function of a fixed order. The capability of handling large number of interpolation data makes our algorithm robust to the inherent finite sample noise in the interpolation data. The algorithm involves solving some least-squares problems and semidefinite programming problems, and is thus numerically efficient. Numerical tests show that our algorithm gives very reliable spectral estimates.
Keywords :
autoregressive moving average processes; filtering theory; interpolation; least squares approximations; mathematical programming; spectral analysis; autoregressive moving average modeling; half spectrum estimation; half spectrum function; input-to-state filter; interpolation algorithm; least-squares problems; model-based spectral analysis; semidefinite programming problems; spectral decomposition; Autoregressive processes; Filtering; Filters; Frequency estimation; Interpolation; Maximum likelihood estimation; Noise robustness; Signal processing algorithms; Spectral analysis; Testing; Autoregressive moving average (ARMA) modeling; Nevanlinna–Pick interpolation; input-to-state filtering; spectral analysis;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2007.896253
Filename :
4305450
Link To Document :
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