Full motion and flow field recovery from echo Doppler data

被引:38
作者
Arigovindan, Muthuvel
Suehling, Michael
Jansen, Christian
Hunziker, Patrick
Unser, Michael [1 ]
机构
[1] Ecole Polytech Fed Lausanne, Biomed Imaging Grp, CH-1015 Lausanne, Switzerland
[2] Kantonsspital, CH-4031 Basel, Switzerland
关键词
color Doppler imaging; color flow imaging; echocardiography; nonuniform sampling; projected sampling; pulsed wave Doppler; regularized reconstruction; shift-invariant spaces; tissue Doppler imaging; ultrasound Doppler; variational reconstruction; vector field reconstruction; velocity field reconstruction; WALL-MOTION; IN-VITRO; TISSUE; ECHOCARDIOGRAPHY; RECONSTRUCTION; VELOCITY;
D O I
10.1109/TMI.2006.884201
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
We present a new computational method for reconstructing a vector velocity field from scattered, pulsed-wave ultrasound Doppler data. The main difficulty is that the Doppler measurements are incomplete, for they do only capture the velocity component along the beam direction. We thus propose to combine measurements from different beam directions. However, this is not yet sufficient to make the problem well posed because 1) the angle between the directions is typically small and 2) the data is noisy and nonuniformly sampled. We propose to solve this reconstruction problem in the continuous domain using regularization. The reconstruction is formulated as the minimizer of a cost that is a weighted sum of two terms: 1) the sum of squared difference between the Doppler data and the projected velocities 2) a quadratic regularization functional that imposes some smoothness on the velocity field. We express our solution for this minimization problem in a B-spline basis, obtaining a sparse system of equations that can be solved efficiently. Using synthetic phantom data, we demonstrate the significance of tuning the regularization according to the a priori knowledge about the physical property of the motion. Next, we validate our method using real phantom data for which the ground truth is known. We then present reconstruction results obtained from clinical data that originate from 1) blood How in carotid bifurcation and 2) cardiac wall motion.
引用
收藏
页码:31 / 45
页数:15
相关论文
共 24 条
[1]   Variational image reconstruction from arbitrarily spaced samples:: A fast multiresolution spline solution [J].
Arigovindan, M ;
Sühling, M ;
Hunziker, P ;
Unser, M .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2005, 14 (04) :450-460
[2]   Evaluation of differential optical flow techniques on synthesized echo images [J].
Baraldi, P ;
Sarti, A ;
Lamberti, C ;
Prandini, A ;
Sgallari, F .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1996, 43 (03) :259-272
[3]   MOMS:: Maximal-order interpolation of minimal support [J].
Blu, T ;
Thévenaz, P ;
Unser, M .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2001, 10 (07) :1069-1080
[4]  
Bookstein FL, 1991, Morphometric tools for landmark data: Geometry and biology
[5]   Evaluation of 3-D colour Doppler ultrasound for the measurement of proximal isovelocity surface area [J].
DeGroot, C ;
Drangova, M ;
Fenster, A ;
Zhu, SP ;
Pflugfelder, PW ;
Boughner, DR .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2000, 26 (06) :989-999
[6]  
Duchon J., 1977, LECT NOTES MATH, P85, DOI 10.1007/BFb0086566
[7]  
Evans D., 2000, Doppler Ultrasound: Physics, Instrumental, and Clinical Applications
[8]   Contraction and relaxation velocities of the normal left ventricle using pulsed-wave tissue Doppler echocardiography [J].
Galiuto, L ;
Ignone, G ;
DeMaria, AN .
AMERICAN JOURNAL OF CARDIOLOGY, 1998, 81 (05) :609-614
[9]   Color-coded measures of myocardial velocity throughout the cardiac cycle by tissue Doppler imaging to quantify regional left ventricular function [J].
Gorcsan, J ;
Gulati, VK ;
Mandarino, WA ;
Katz, WE .
AMERICAN HEART JOURNAL, 1996, 131 (06) :1203-1213
[10]  
HAKBUSCH W, 1994, ITERATIVE SOLUTIONS