DocumentCode :
739872
Title :
An Iterative CT Reconstruction Algorithm for Fast Fluid Flow Imaging
Author :
Van Eyndhoven, Geert ; Batenburg, K. Joost ; Kazantsev, Daniil ; Van Nieuwenhove, Vincent ; Lee, Peter D. ; Dobson, Katherine J. ; Sijbers, Jan
Author_Institution :
iMinds-Vision Lab., Univ. of Antwerp, Antwerp, Belgium
Volume :
24
Issue :
11
fYear :
2015
Firstpage :
4446
Lastpage :
4458
Abstract :
The study of fluid flow through solid matter by computed tomography (CT) imaging has many applications, ranging from petroleum and aquifer engineering to biomedical, manufacturing, and environmental research. To avoid motion artifacts, current experiments are often limited to slow fluid flow dynamics. This severely limits the applicability of the technique. In this paper, a new iterative CT reconstruction algorithm for improved a temporal/spatial resolution in the imaging of fluid flow through solid matter is introduced. The proposed algorithm exploits prior knowledge in two ways. First, the time-varying object is assumed to consist of stationary (the solid matter) and dynamic regions (the fluid flow). Second, the attenuation curve of a particular voxel in the dynamic region is modeled by a piecewise constant function over time, which is in accordance with the actual advancing fluid/air boundary. Quantitative and qualitative results on different simulation experiments and a real neutron tomography data set show that, in comparison with the state-of-the-art algorithms, the proposed algorithm allows reconstruction from substantially fewer projections per rotation without image quality loss. Therefore, the temporal resolution can be substantially increased, and thus fluid flow experiments with faster dynamics can be performed.
Keywords :
flow visualisation; image resolution; iterative methods; spatiotemporal phenomena; aquifer engineering; biomedical research; computed tomography imaging; environmental research; fast fluid flow imaging; fluid-air boundary; iterative CT reconstruction algorithm; manufacturing research; petroleum engineering; piecewise constant function; real neutron tomography data set; simulation experiments; solid matter; spatial resolution; temporal resolution; time-varying object; Attenuation; Computed tomography; Heuristic algorithms; Image reconstruction; Indexes; Reconstruction algorithms; CT; fluid flow experiments; iterative reconstruction; neutron tomography;
fLanguage :
English
Journal_Title :
Image Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1057-7149
Type :
jour
DOI :
10.1109/TIP.2015.2466113
Filename :
7182322
Link To Document :
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