DocumentCode
760874
Title
Echographic image mean gray level changes with tissue dynamics: a system-based model study
Author
Meunier, Jean ; Bertrand, Michel
Author_Institution
Dept. d´´Inf. et de Recherche Oper., Montreal Univ., Que., Canada
Volume
42
Issue
4
fYear
1995
fDate
4/1/1995 12:00:00 AM
Firstpage
403
Lastpage
410
Abstract
In echography, several groups have reported a systematic decrease in the total backscattering intensity or image mean gray level during myocardial contraction with a minimum at end-systole and maximum at end-diastole. In order to investigate this phenomenon, the authors use a three-dimensional inhomogeneous continuum model to mimic the tissue as a collection of cells that scatter the acoustic wave due to their individual impedance. The mathematical analysis clearly shows the relationship between the mean gray level changes and the size, orientation, and deformation of the cells that compose the tissue, as well as the frequency of the transducer. Using a myocardial model example, the mean gray level changes reported in the literature during contraction are described in terms of changes in orientation and deformation of cardiac fibers. The model is simple and should set the ground for further study and analysis of speckle pattern changes during tissue motion.
Keywords
echocardiography; physiological models; 3D inhomogeneous continuum model; acoustic wave scattering; cardiac fibers deformation; cardiac fibers orientation; cells collection; echographic image mean gray level changes; end-diastole; end-systole; medical diagnostic imaging; myocardial contraction; speckle pattern changes; system-based model; tissue dynamics; tissue motion; total backscattering intensity; transducer frequency; Acoustic scattering; Acoustic transducers; Acoustic waves; Backscatter; Deformable models; Frequency; Impedance; Mathematical analysis; Myocardium; Pattern analysis; Echocardiography; Electric Impedance; Linear Models; Models, Cardiovascular; Myocardial Contraction; Scattering, Radiation;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.376133
Filename
376133
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