DocumentCode :
43348
Title :
Rectangular Fixed-Gantry CT Prototype: Combining CNT X-Ray Sources and Accelerated Compressed Sensing-Based Reconstruction
Author :
Gonzales, Brian ; Spronk, Derrek ; Yuan Cheng ; Tucker, Andrew W. ; Beckman, Moritz ; Zhou, Otto ; Jianping Lu
Author_Institution :
XinRay Syst. Inc., Research Triangle Park, NC, USA
Volume :
2
fYear :
2014
fDate :
2014
Firstpage :
971
Lastpage :
981
Abstract :
Carbon nanotube (CNT)-based multibeam X-ray tubes provide an array of individually controllable X-ray focal spots. The CNT tube allows for flexible placement and distribution of X-ray focal spots in a system. Using a CNT tube, a computed tomography (CT) system with a noncircular geometry and a nonrotating gantry can be created. The noncircular CT geometry can be optimized around a specific imaging problem, utilizing the flexibility of CNT multibeam X-ray tubes to achieve the optimal focal spot distribution for the design constraints of the problem. Iterative reconstruction algorithms provide flexible CT reconstruction to accommodate the noncircular geometry. Compressed sensing-based iterative reconstruction algorithms apply a sparsity constraint to the reconstructed images that can partially account for missing angular coverage due to the noncircular geometry. In this paper, we present a laboratory prototype CT system that uses CNT multibeam X-ray tubes; a rectangular, nonrotating imaging geometry; and an accelerated compressed sensing-based iterative reconstruction algorithm. We apply a total variation minimization as our sparsity constraint. We present the advanced CNT multibeam tubes and show the stability and flexibility of these new tubes. We also present the unique imaging geometry and discuss the design constraints that influenced the specific system design. The reconstruction method is presented along with an overview of the acceleration of the algorithm to near real-time reconstruction. We demonstrate that the prototype reconstructed images have image quality comparable with a conventional CT system. The prototype is optimized for airport checkpoint baggage screening, but the concepts developed may apply to other application-specific CT imaging systems.
Keywords :
X-ray imaging; X-ray tubes; carbon nanotubes; compressed sensing; computational geometry; computerised tomography; focal planes; image reconstruction; iterative methods; minimisation; CNT X-ray source; CNT multibeam X-ray tube; CNT tube; X-ray focal spot distribution; X-ray focal spot placement; airport checkpoint baggage screening; application specific CT imaging system; carbon nanotube; compressed sensing-based iterative reconstruction algorithm; computed tomography; controllable X-ray focal spot array; design constraints; flexible CT reconstruction; image quality; image reconstruction; imaging geometry; imaging problem; laboratory prototype CT system; noncircular CT geometry optimisation; nonrotating gantry; nonrotating imaging geometry; rectangular fixed gantry CT prototype; sparsity constraint; total variation minimization; Biomedical image processing; Carbon nanotubes; Computed tomography; Electron tubes; Geometry; Image reconstruction; Reconstruction algorithms; X-ray imaging; Carbon nanotube x-ray sources; compressed sensing reconstruction; fixed-gantry computed tomography; iterative reconstruction; total variation minimization;
fLanguage :
English
Journal_Title :
Access, IEEE
Publisher :
ieee
ISSN :
2169-3536
Type :
jour
DOI :
10.1109/ACCESS.2014.2351751
Filename :
6882769
Link To Document :
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