DocumentCode :
1268626
Title :
Monte Carlo modeling of penetration effect for iodine-131 pinhole imaging
Author :
Wang, Huili ; Jaszczak, Ronald J. ; Coleman, R. Edward
Author_Institution :
Dept. of Radiol., Duke Univ. Med. Center, Durham, NC, USA
Volume :
43
Issue :
6
fYear :
1996
fDate :
12/1/1996 12:00:00 AM
Firstpage :
3272
Lastpage :
3277
Abstract :
In our Monte Carlo simulation, we employed the variance reduction technique, forced detection, to improve simulation efficiency. For the forced detection, the minimal cone that covers the knife-edge region of a pinhole aperture was used to confine the direction of a photon emission with the vertex located at the emission point. A lead pinhole insert was used to validate our Monte Carlo model. For the validation, the responses of a point source at six different locations along the central ray of the pinhole aperture were measured to compare with simulated responses. The range of distances for the source locations was 3-18 cm from the aperture with the inter-location distance equal to 3 cm. The comparison demonstrated the accuracy of our Monte Carlo model. With the validated Monte Carlo program, we simulated point response functions for pinhole aperture with various aperture span angle, hole size, and materials. The point responses were parameterized using radially circularly symmetric two-dimensional exponential functions. The parameter describing the roll-off rate of an exponential function was expressed in terms of the span angle of the pinhole knife-edge opening and the material used to make the pinhole aperture. The parameterized penetration model can he incorporated into image reconstruction algorithms that compensate for the penetration effect
Keywords :
Monte Carlo methods; image reconstruction; iodine; medical image processing; radiation therapy; single photon emission computed tomography; 131I; I; Monte Carlo modeling; SPECT imaging; aperture span angle; emission point; forced detection; hole size; image reconstruction algorithms; inter-location distance; iodine-131 pinhole imaging; knife-edge region; lead pinhole insert; malignant tumors; materials; minimal cone; parameterized penetration model; penetration effect; photon emission; pinhole aperture; pinhole knife-edge opening; point response functions; radially circularly symmetric two-dimensional exponential functions; radiation therapy; roll-off rate; simulation efficiency; span angle; variance reduction technique; Apertures; Biomedical applications of radiation; Collimators; Detectors; Image reconstruction; Iterative algorithms; Monte Carlo methods; Object detection; Position measurement; Single photon emission computed tomography;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/23.552734
Filename :
552734
Link To Document :
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