Absorbed fractions in a voxel-based phantom calculated with the MCNP-4B code

Med Phys. 2000 Jul;27(7):1555-62. doi: 10.1118/1.599021.

Abstract

A new approach for calculating internal dose estimates was developed through the use of a more realistic computational model of the human body. The present technique shows the capability to build a patient-specific phantom with tomography data (a voxel-based phantom) for the simulation of radiation transport and energy deposition using Monte Carlo methods such as in the MCNP-4B code. MCNP-4B absorbed fractions for photons in the mathematical phantom of Snyder et al. agreed well with reference values. Results obtained through radiation transport simulation in the voxel-based phantom, in general, agreed well with reference values. Considerable discrepancies, however, were found in some cases due to two major causes: differences in the organ masses between the phantoms and the occurrence of organ overlap in the voxel-based phantom, which is not considered in the mathematical phantom.

MeSH terms

  • Algorithms
  • Digestive System / diagnostic imaging
  • Heart / diagnostic imaging
  • Humans
  • Lung / diagnostic imaging
  • Male
  • Monte Carlo Method
  • Pancreas / diagnostic imaging
  • Phantoms, Imaging*
  • Photons
  • Radiometry / methods*
  • Radiotherapy Planning, Computer-Assisted / methods*
  • Software
  • Spleen / diagnostic imaging
  • Tomography, X-Ray Computed