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PMID: 20811587 Published · ppublish English Journal Article

Accelerated SPECT Monte Carlo Simulation Using Multiple Projection Sampling and Convolution-Based Forced Detection.

IEEE transactions on nuclear science ·Vol. 55 ·No. 1 ·2008-01-01 ·页码 560-567

Liu S, King MA, Brill AB, Stabin MG, Farncombe TH

Abstract

Monte Carlo (MC) is a well-utilized tool for simulating photon transport in single photon emission computed tomography (SPECT) due to its ability to accurately model physical processes of photon transport. As a consequence of this accuracy, it suffers from a relatively low detection efficiency and long computation time. One technique used to improve the speed of MC modeling is the effective and well-established variance reduction technique (VRT) known as forced detection (FD). With this method, photons are followed as they traverse the object under study but are then forced to travel in the direction of the detector surface, whereby they are detected at a single detector location. Another method, called convolution-based forced detection (CFD), is based on the fundamental idea of FD with the exception that detected photons are detected at multiple detector locations and determined with a distance-dependent blurring kernel. In order to further increase the speed of MC, a method named multiple projection convolution-based forced detection (MP-CFD) is presented. Rather than forcing photons to hit a single detector, the MP-CFD method follows the photon transport through the object but then, at each scatter site, forces the photon to interact with a number of detectors at a variety of angles surrounding the object. This way, it is possible to simulate all the projection images of a SPECT simulation in parallel, rather than as independent projections. The result of this is vastly improved simulation time as much of the computation load of simulating photon transport through the object is done only once for all projection angles.The results of the proposed MP-CFD method agrees well with the experimental data in measurements of point spread function (PSF), producing a correlation coefficient (r(2)) of 0.99 compared to experimental data. The speed of MP-CFD is shown to be about 60 times faster than a regular forced detection MC program with similar results.

作者与单位
共 5 位作者,点击展开单位 / ORCID
Liu Shaoying
Department of Electrical and Computer Engineering, McMaster University, Hamilton, ON L8S 4K1 Canada.
King Michael A
Brill Aaron B
Stabin Michael G
Farncombe Troy H
Article Info
Journal
IEEE transactions on nuclear science
Abbr.
IEEE Trans Nucl Sci
ISSN
0018-9499
Published
2008-01-01
页码
560-567
Language
English
Country/Region
United States
NLM ID
9879488
基金资助
NCI NIH HHS · R01 CA104907 · United States
NCI NIH HHS · R01 CA104907-03 · United States
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