Title :
Solid geometry-based object model for Monte Carlo simulated emission and transmission tomographic imaging systems
Author :
Wang, Huili ; Jaszczak, Ronald J. ; Coleman, R. Edward
Author_Institution :
Dept. of Radiol., Duke Univ., Med. Center, Durham, NC, USA
fDate :
9/1/1992 12:00:00 AM
Abstract :
An object model based on combinations of object primitives is proposed for Monte Carlo simulated emission and transmission tomographic imaging systems. The primitives include ellipsoids, elliptic cylinders, tapered elliptic cylinders, rectangular solids, and their subsets: half, quarter, and eighth. The probability of a photon surviving interactions with the phantom medium is used as a weight for variance reduction. Calculation of the probability can be computationally intensive without properly organizing the inclusion of subregions within larger regions. A tree data structure is introduced to organize this inclusion relationship and used as the basis for two computationally efficient schemes for determining the intersection locations of a photon path with primitives and for identifying the attenuation coefficients for adjacent intersections for the survival probability computation. The approach has been validated by emission as well as transmission simulations. A thorax phantom containing overlapped ellipsoids and a heart composed of twelve overlapped quarter ellipsoids are employed to demonstrate the capability of the model
Keywords :
Monte Carlo methods; computerised tomography; modelling; radioisotope scanning and imaging; Monte Carlo simulation; computationally efficient schemes; elliptic cylinders; emission tomography; inclusion relationship; intersection locations; medical diagnostic imaging systems; phantom medium; photon path; photon survival probability; rectangular solids; solid geometry-based object-model; tapered elliptic cylinders; thorax phantom; transmission tomography; tree data structure; variance reduction; Computational modeling; Ellipsoids; Imaging phantoms; Monte Carlo methods; Optical computing; Organizing; Probability; Solid modeling; Tomography; Tree data structures;
Journal_Title :
Medical Imaging, IEEE Transactions on