Title :
Method for Fast CT/SPECT-Based 3D Monte Carlo Absorbed Dose Computations in Internal Emitter Therapy
Author :
Wilderman, S.J. ; Dewaraja, Y.K.
Author_Institution :
Dept. of Nucl. Eng. & Radiologic Sci., Michigan Univ., Ann Arbor, MI
Abstract :
The DPM (Dose Planning Method) Monte Carlo electron and photon transport program, designed for fast computation of radiation absorbed dose in external beam radiotherapy, has been adapted to the calculation of absorbed dose in patient-specific internal emitter therapy. Because both its photon and electron transport mechanics algorithms have been optimized for fast computation in 3D voxelized geometries (in particular, those derived from CT scans), DPM is perfectly suited for performing patient-specific absorbed dose calculations in internal emitter therapy. In the updated version of DPM developed for the current work, the necessary inputs are a patient CT image, a registered SPECT image, and any number of registered masks defining regions of interest. DPM has been benchmarked for internal emitter therapy applications by comparing computed absorption fractions for a variety of organs using a Zubal phantom with reference results from the Medical Internal Radionuclide Dose (MIRD) Committee standards. In addition, the beta decay source algorithm and the photon tracking algorithm of DPM have been further benchmarked by comparison to experimental data. This paper presents a description of the program, the results of the benchmark studies, and some sample computations using patient data from radioimmunotherapy studies using 131I
Keywords :
Monte Carlo methods; computerised tomography; dosimetry; image registration; iodine; phantoms; radiation therapy; radioisotopes; single photon emission computed tomography; 3D Monte Carlo absorbed dose computation algorithm; 3D voxelized geometries; 131I; 131I radioimmunotherapy; CT images; Medical Internal Radionuclide Dose Committee standard; Monte Carlo electron transport mechanics algorithm; Zubal phantom; beta decay source algorithm; dose planning method; dosimetry; external beam radiotherapy; patient-specific internal emitter therapy; photon tracking algorithm; photon transport mechanics algorithm; registered SPECT images; Computational geometry; Computed tomography; Electron beams; Electron emission; Geometrical optics; Medical treatment; Monte Carlo methods; Optical computing; Radiation dosage; Single photon emission computed tomography; Biomedical applications of nuclear radiation; Monte Carlo methods; biomedical nuclear imaging; dosimetry;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2006.889164