Title :
LV volume quantification via spatiotemporal analysis of real-time 3-D echocardiography
Author :
Angelini, Elsa D. ; Laine, Andrew F. ; Takuma, Shin ; Holmes, Jeffrey W. ; Homma, Shunichi
Author_Institution :
Dept. of Biomed. Eng., Columbia Univ., New York, NY, USA
fDate :
6/1/2001 12:00:00 AM
Abstract :
This paper presents a method of four-dimensional (4-D) (3-D+Time) space-frequency analysis for directional denoising and enhancement of real-time three-dimensional (RT3D) ultrasound and quantitative measures in diagnostic cardiac ultrasound. Expansion of echocardiographic volumes is performed with complex exponential wavelet-like basis functions called brushlets. These functions offer good localization in time and frequency and decompose a signal into distinct patterns of oriented harmonics, which are invariant to intensity and contrast range. Deformable-model segmentation is carried out on denoised data after thresholding of transform coefficients. This process attenuates speckle noise while preserving cardiac structure location. The superiority of 4-D over 3-D analysis for decorrelating additive white noise and multiplicative speckle noise on a 4-D phantom volume expanding in time is demonstrated. Quantitative validation, computed for contours and volumes, is performed on in vitro balloon phantoms. Clinical applications of this spatiotemporal analysis tool are reported for six patient cases providing measures of left ventricular volumes and ejection fraction.
Keywords :
echocardiography; image enhancement; medical image processing; speckle; volume measurement; white noise; 4-D phantom volume expanding in time; LV volume quantification; additive white noise; cardiac structure location; deformable-model segmentation; echocardiographic volumes expansion; ejection fraction; in vitro balloon phantoms; medical diagnostic imaging; multiplicative speckle noise; quantitative validation; real-time 3-D echocardiography; spatiotemporal analysis; speckle noise; Additive white noise; Decorrelation; Echocardiography; Frequency; Imaging phantoms; Noise reduction; Spatiotemporal phenomena; Speckle; Ultrasonic imaging; Ultrasonic variables measurement; Cardiac Volume; Diastole; Echocardiography, Four-Dimensional; Echocardiography, Three-Dimensional; Fourier Analysis; Heart Ventricles; Humans; Phantoms, Imaging; Signal Processing, Computer-Assisted; Systole;
Journal_Title :
Medical Imaging, IEEE Transactions on