Title :
Two-dimensional Fourier series-based model for nonminimum-phase linear shift-invariant systems and texture image classification
Author :
Chen, Chii-Horng ; Chi, Chong-Yung ; Chen, Ching-Yung
Author_Institution :
Dept. of Electr. Eng., Nat. Tsing Hua Univ., Hsinchu, Taiwan
fDate :
4/1/2002 12:00:00 AM
Abstract :
In this paper, Chi´s (1997, 1999) real one-dimensional (1-D) parametric nonminimum-phase Fourier series-based model (FSBM) is extended to two-dimensional (2-D) FSBM for a 2-D nonminimum-phase linear shift-invariant system by using finite 2-D Fourier series approximations to its amplitude response and phase response, respectively. The proposed 2-D FSBM is guaranteed stable, and its complex cepstrum can be obtained from its amplitude and phase parameters through a closed-form formula without involving complicated 2-D phase unwrapping and polynomial rooting. A consistent estimator is proposed for the amplitude estimation of the 2-D FSBM using a 2-D half plane causal minimum-phase linear prediction error filter (modeled by a 2-D minimum-phase FSBM), and then, two consistent estimators are proposed for the phase estimation of the 2-D FSBM using the Chien et al. (1997) 2-D phase equalizer (modeled by a 2-D all-pass FSBM). The estimated 2-D FSBM can be applied to modeling of 2-D non-Gaussian random signals and 2-D signal classification using complex cepstra. Some simulation results are presented to support the efficacy of the three proposed estimators. Furthermore, classification of texture images (2-D non-Gaussian signals) using the estimated FSBM, second-, and higher order statistics is presented together with some experimental results. Finally, we draw some conclusions
Keywords :
Fourier series; all-pass filters; amplitude estimation; cepstral analysis; higher order statistics; image classification; image texture; iterative methods; phase estimation; 2-D FSBM; 2-D all-pass FSBM; 2-D half plane causal minimum-phase linear prediction error filter; 2-D minimum-phase FSBM; 2-D nonGaussian random signals; 2-D nonGaussian signals; 2-D nonminimum phase linear shift-invariant system; 2-D phase equalizer; 2-D signal classification; amplitude estimation; amplitude response; cepstrum; closed-form formula; finite 2-D Fourier series approximations; higher order statistics; nonminimum-phase linear shift-invariant systems; phase estimation; phase response; real one-dimensional parametric nonminimum-phase Fourier series-based model; second-order statistics; texture image classification; two-dimensional Fourier series-based model; Amplitude estimation; Cepstrum; Equalizers; Fourier series; Nonlinear filters; Pattern classification; Phase estimation; Polynomials; Predictive models; Two dimensional displays;
Journal_Title :
Signal Processing, IEEE Transactions on