TIME-DELAY ESTIMATION USING WAVELET TRANSFORM FOR PULSED-WAVE ULTRASOUND

被引:14
作者
XU, XL
TEWFIK, AH
GREENLEAF, JF
机构
[1] MAYO CLIN & MAYO FDN,DEPT PHYSIOL & BIOPHYS,BIODYNAM RES UNIT,ROCHESTER,MN 55905
[2] UNIV MINNESOTA,DEPT ELECT ENGN,MINNEAPOLIS,MN 55455
关键词
CROSS-CORRELATION; TISSUE MOTION; BLOOD FLOW VELOCITY; WINDOWED FOURIER TRANSFORM; TIME-FREQUENCY LOCALIZATION; DOPPLER MEASUREMENT;
D O I
10.1007/BF02584460
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The windowed cross-correlation (WCC) technique has recently attracted attention in pulsed-wave (PW) ultrasound for measurement of tissue motion and blood flow velocity because of its performance advantages over the conventional Doppler method. The WCC measures tissue motion and blood flow velocity via estimation of time delays of backscattered signals in two consecutive echoes. In this paper, we propose a wavelet transform-based cross-correlation (WTCC) technique for the time delay estimation in PW ultrasound. The WTCC consists of three steps: (i) computing wavelet transforms (WTs) of received echoes, (ii) computing cross-correlations in the wavelet domain, and (iii) estimating the time delays by maximizing the estimated cross-correlations. Dyadic or continuous wavelets may be used in the proposed approach. The WTCC has a unique feature of using varying time-frequency windows in processing compared with the WCC which only uses a single fixed window. Our computer simulations show that, compared with the WCC, the WTCC provides a better estimation of time delays (lower failure rate and lower estimate error) and its performance is more consistent under various conditions, and more robust with window size. In the simulations, we also tested a specific continuous wavelet for the WTCC that was the emitted pulse itself and found the corresponding WTCC outperforms the WTCC with a regular dyadic wavelet.
引用
收藏
页码:612 / 621
页数:10
相关论文
共 18 条
[1]   TIME DOMAIN FORMULATION OF PULSE-DOPPLER ULTRASOUND AND BLOOD VELOCITY ESTIMATION BY CROSS-CORRELATION [J].
BONNEFOUS, O ;
PESQUE, P .
ULTRASONIC IMAGING, 1986, 8 (02) :73-85
[2]   TIME-DELAY ESTIMATION FOR PASSIVE SONAR SIGNAL-PROCESSING [J].
CARTER, GC .
IEEE TRANSACTIONS ON ACOUSTICS SPEECH AND SIGNAL PROCESSING, 1981, 29 (03) :463-470
[3]  
Chui CK., 1992, INTRO WAVELETS
[4]  
Daubechies I., 1992, 10 LECT WAVELETS, DOI 10.1137/1.9781611970104
[5]   VOLUMETRIC BLOOD-FLOW VIA TIME-DOMAIN CORRELATION - EXPERIMENTAL-VERIFICATION [J].
EMBREE, PM ;
OBRIEN, WD .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1990, 37 (03) :176-189
[6]  
Evans D. H., 1989, DOPPLER ULTRASOUND P
[7]   FLOW VELOCITY PROFILE VIA TIME-DOMAIN CORRELATION ERROR ANALYSIS AND COMPUTER-SIMULATION [J].
FOSTER, SG ;
EMBREE, PM ;
OBRIEN, WD .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1990, 37 (03) :164-175
[8]   CURRENT TIME-DOMAIN METHODS FOR ASSESSING TISSUE MOTION BY ANALYSIS FROM REFLECTED ULTRASOUND ECHOES - A REVIEW [J].
HEIN, IA ;
OBRIEN, WD .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1993, 40 (02) :84-102
[9]   COMPARISON OF THE PERFORMANCE OF THE RF CROSS-CORRELATION AND DOPPLER AUTOCORRELATION TECHNIQUE TO ESTIMATE THE MEAN VELOCITY OF SIMULATED ULTRASOUND SIGNALS [J].
HOEKS, APG ;
ARTS, TGJ ;
BRANDS, PJ ;
RENEMAN, RS .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1993, 19 (09) :727-740
[10]  
KNAPP CH, 1976, IEEE T ACOUST SPEECH, V24, P4