DocumentCode
1107552
Title
Determining cardiac velocity fields and intraventricular pressure distribution from a sequence of ultrafast CT cardiac images
Author
Song, Samuel M. ; Leahy, Richard M. ; Boyd, Douglas P. ; Brundage, Bruce H. ; Napel, Sandy
Author_Institution
Radiological Sci. Lab., Stanford Univ., CA, USA
Volume
13
Issue
2
fYear
1994
fDate
6/1/1994 12:00:00 AM
Firstpage
386
Lastpage
397
Abstract
A method of computing the velocity field and pressure distribution from a sequence of ultrafast CT (UFCT) cardiac images is demonstrated. UFCT multi-slice cine imaging gives a series of tomographic slices covering the volume of the heart at a rate of 17 frames per second. The complete volume data set can be modeled using equations of continuum theory and through regularization, velocity vectors of both blood and tissue can be determined at each voxel in the volume. The authors present a technique to determine the pressure distribution throughout the volume of the left ventricle using the computed velocity field. A numerical algorithm is developed by discretizing the pressure Poisson equation (PPE), which Is based on the Navier-Stokes equation. The algorithm is evaluated using a mathematical phantom of known velocity and pressure-Couette flow. It is shown that the algorithm based on the PPE can reconstruct the pressure distribution using only the velocity data. Furthermore, the PPE is shown to be robust in the presence of noise. The velocity field and pressure distribution derived from a UFCT study of a patient are also presented
Keywords
biomedical measurement; cardiology; computerised tomography; diagnostic radiography; haemodynamics; image sequences; medical image processing; pressure measurement; velocity measurement; Navier-Stokes equation; cardiac velocity fields; continuum theory equations; intraventricular pressure distribution; left ventricle; mathematical phantom; medical diagnostic imaging; numerical algorithm; pressure Poisson equation; regularization; ultrafast CT cardiac images sequence; velocity vectors; voxel; Blood; Computed tomography; Distributed computing; Heart; Helium; Image reconstruction; Imaging phantoms; Laboratories; Noise robustness; Poisson equations;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/42.293931
Filename
293931
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