DocumentCode :
978188
Title :
A Reconstruction Method for Gappy and Noisy Arterial Flow Data
Author :
Yakhot, Alexander ; Anor, Tomer ; Karniadakis, George Em
Author_Institution :
Ben-Gurion Univ. of the Negev, Beersheva
Volume :
26
Issue :
12
fYear :
2007
Firstpage :
1681
Lastpage :
1697
Abstract :
Proper orthogonal decomposition (POD), Kriging interpolation, and smoothing are applied to reconstruct gappy and noisy data of blood flow in a carotid artery. While we have applied these techniques to clinical data, in this paper in order to rigorously evaluate their effectiveness we rely on data obtained by computational fluid dynamics (CFD). Specifically, gappy data sets are generated by removing nodal values from high-resolution 3-D CFD data (at random or in a fixed area) while noisy data sets are formed by superimposing speckle noise on the CFD results. A combined POD-Kriging procedure is applied to planar data sets mimicking coarse resolution "ultrasound-like" blood flow images. A method for locating the vessel wall boundary and for calculating the wall shear stress (WSS) is also proposed. The results show good agreement with the original CFD data. The combined POD-Kriging method, enhanced by proper smoothing if needed, holds great potential in dealing effectively with gappy and noisy data reconstruction of in vivo velocity measurements based on color Doppler ultrasound (CDUS) imaging or magnetic resonance angiography (MRA).
Keywords :
Doppler measurement; biomedical MRI; biomedical measurement; biomedical ultrasonics; blood vessels; cardiovascular system; computational fluid dynamics; edge detection; haemodynamics; image colour analysis; image reconstruction; image resolution; interpolation; medical image processing; shear flow; smoothing methods; Kriging interpolation; blood flow; carotid artery; coarse resolution; color Doppler ultrasound imaging; computational fluid dynamics; gappy arterial flow data; high-resolution 3-D CFD data; image reconstruction method; image smoothing; in vivo velocity measurements; magnetic resonance angiography; noisy arterial flow data; planar data sets; proper orthogonal decomposition; speckle noise; vessel wall boundary; wall shear stress; Blood flow; Carotid arteries; Computational fluid dynamics; Image reconstruction; Interpolation; Noise generators; Reconstruction algorithms; Smoothing methods; Speckle; Ultrasonic imaging; Carotid artery; computational fluid dynamics (CFD); kriging interpolation; proper orthogonal decomposition; Artifacts; Blood Flow Velocity; Carotid Arteries; Image Enhancement; Imaging, Three-Dimensional; Least-Squares Analysis; Magnetic Resonance Angiography; Models, Cardiovascular; Principal Component Analysis; Pulsatile Flow; Reproducibility of Results; Shear Strength; Signal Processing, Computer-Assisted; Ultrasonography, Doppler, Color;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2007.901991
Filename :
4383557
Link To Document :
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