Spectral analysis of demodulated ultrasound returns: Detection of scatterer periodicity and application to tissue classification

被引:2
作者
Roth, SL [1 ]
Hastings, HM
Evans, SJL
Esposito, M
Gladstone, C
Rathod, S
Bodenheimer, MM
机构
[1] Long Isl Jewish Med Ctr, Harris Chasanoff Heart Inst, New Hyde Park, NY 11042 USA
[2] Hofstra Univ, Dept Math, Hempstead, NY 11550 USA
关键词
aorta; atherosclerosis; demodulation; power spectrum; radiofrequency; tissue characterization;
D O I
10.1177/016173469701900403
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Ultrasound returns from tissue display Variations in amplitude on several spatial scales. Although large-scale variations result from factors such as attenuation, variations on smaller scales are caused by tissue characteristics such as variations in scatterer spacing and reflectance. These small scale variations cause a corresponding variation in the amplitude of the ultrasound return. A simple and direct method for detecting and quantifying periodicity in these variations in the presence of attenuation is described. The radiofrequency ultrasound return is first demodulated by full-wave rectification. The normalized power spectrum of the demodulated return then yields an index that we call the relative Fourier energy. Both computer simulations and in vitro experiments were performed in order to study how relative Fourier energy performed in discriminating between periodic and random scatterer distributions. Computer simulations demonstrated significant differences between the returns from periodic and random scatterer distributions. Ultrasound returns from aortic tissue yielded a relative Fourier energy index that was significantly different between normal vs. atherosclerotic tissue (normal: 0.868 +/- 0.076, mean +/- s.d., fibrofatty plaque: 0.705 +/- 0.109, p< 0.01 vs, normal, calcified plaque: 0.753 +/- 0.078, p < 0.01 vs. normal). In contrast, no difference was found in comparisons of overall reflectance. (C) 1998 Dynamedia, Inc.
引用
收藏
页码:266 / 277
页数:12
相关论文
共 17 条
[1]  
BAMBER J C, 1979, Ultrasound in Medicine and Biology, V5, P159, DOI 10.1016/0301-5629(79)90084-X
[2]   SPECKLE IN ULTRASOUND B-MODE SCANS [J].
BURCKHARDT, CB .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1978, 25 (01) :1-6
[3]   ULTRASOUND ECHO ENVELOPE ANALYSIS USING A HOMODYNED K-DISTRIBUTION SIGNAL MODEL [J].
DUTT, V ;
GREENLEAF, JF .
ULTRASONIC IMAGING, 1994, 16 (04) :265-287
[4]   ULTRASONIC CHARACTERIZATION OF TISSUE STRUCTURE IN THE INVIVO HUMAN-LIVER AND SPLEEN [J].
FELLINGHAM, LL ;
SOMMER, FG .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1984, 31 (04) :418-428
[5]   ANALYSIS OF ULTRASOUND IMAGE TEXTURE VIA GENERALIZED RICIAN STATISTICS [J].
INSANA, MF ;
WAGNER, RF ;
GARRA, BS ;
BROWN, DG ;
SHAWKER, TH .
OPTICAL ENGINEERING, 1986, 25 (06) :743-748
[6]   A SIMULATION STUDY OF ECHOGRAPHIC IMAGING OF DIFFUSE AND STRUCTURALLY SCATTERING MEDIA [J].
JACOBS, EMGP ;
THIJSSEN, JM .
ULTRASONIC IMAGING, 1991, 13 (04) :316-333
[7]   DIFFERENT DEGREES OF ATHEROSCLEROSIS DETECTED BY BACKSCATTERED ULTRASOUND - AN INVITRO STUDY ON FIXED HUMAN AORTIC WALLS [J].
PICANO, E ;
LANDINI, L ;
DISTANTE, A ;
SARNELLI, R ;
BENASSI, A ;
LABBATE, A .
JOURNAL OF CLINICAL ULTRASOUND, 1983, 11 (07) :375-379
[8]   FIBROSIS, LIPIDS, AND CALCIUM IN HUMAN ATHEROSCLEROTIC PLAQUE - INVITRO DIFFERENTIATION FROM NORMAL AORTIC WALLS BY ULTRASONIC-ATTENUATION [J].
PICANO, E ;
LANDINI, L ;
DISTANTE, A ;
BENASSI, A ;
SARNELLI, R ;
LABBATE, A .
CIRCULATION RESEARCH, 1985, 56 (04) :556-562
[9]   USE OF NON-RAYLEIGH STATISTICS FOR THE IDENTIFICATION OF TUMORS IN ULTRASONIC B-SCANS OF THE BREAST [J].
SHANKAR, PM ;
REID, JM ;
ORTEGA, H ;
PICCOLI, CW ;
GOLDBERG, BB .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 1993, 12 (04) :687-692
[10]   DEVIATIONS FROM RAYLEIGH STATISTICS IN ULTRASONIC SPECKLE [J].
TUTHILL, TA ;
SPERRY, RH ;
PARKER, KJ .
ULTRASONIC IMAGING, 1988, 10 (02) :81-89