DocumentCode
879837
Title
Fast, Accurate and Shift-Varying Line Projections for Iterative Reconstruction Using the GPU
Author
Pratx, Guillem ; Chinn, Garry ; Olcott, Peter D. ; Levin, Craig S.
Author_Institution
Mol. Imaging Program, Stanford Univ., Stanford, CA
Volume
28
Issue
3
fYear
2009
fDate
3/1/2009 12:00:00 AM
Firstpage
435
Lastpage
445
Abstract
List-mode processing provides an efficient way to deal with sparse projections in iterative image reconstruction for emission tomography. An issue often reported is the tremendous amount of computation required by such algorithm. Each recorded event requires several back- and forward line projections. We investigated the use of the programmable graphics processing unit (GPU) to accelerate the line-projection operations and implement fully-3D list-mode ordered-subsets expectation-maximization for positron emission tomography (PET). We designed a reconstruction approach that incorporates resolution kernels, which model the spatially-varying physical processes associated with photon emission, transport and detection. Our development is particularly suitable for applications where the projection data is sparse, such as high-resolution, dynamic, and time-of-flight PET reconstruction. The GPU approach runs more than 50 times faster than an equivalent CPU implementation while image quality and accuracy are virtually identical. This paper describes in details how the GPU can be used to accelerate the line projection operations, even when the lines-of-response have arbitrary endpoint locations and shift-varying resolution kernels are used. A quantitative evaluation is included to validate the correctness of this new approach.
Keywords
expectation-maximisation algorithm; image reconstruction; iterative methods; medical image processing; operating system kernels; positron emission tomography; fully-3D list-mode ordered-subsets expectation-maximization; iterative image reconstruction; line-projection operations; photon detection; photon emission; photon transport; positron emission tomography; programmable graphics processing unit; shift-varying resolution kernels; time-of-flight PET reconstruction; Acceleration; Detectors; Image reconstruction; Iterative algorithms; Kernel; Photonic crystals; Positron emission tomography; Radiology; Solids; Spatial resolution; Graphics processing units; iterative image reconstruction; list-mode; ordered-subset expectation-maximization; positron emission tomography; single photon emission computed tomography; Algorithms; Image Processing, Computer-Assisted; Normal Distribution; Pattern Recognition, Automated; Phantoms, Imaging; Positron-Emission Tomography; Tomography, Emission-Computed, Single-Photon;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2008.2006518
Filename
4637849
Link To Document