Published June 1991 | Version v1
Journal article

Computer generation of random deviates

  • 1. Flinders Medical Centre, SA (Australia). Radiology Dept.
  • 2. Royal North Shore Hospital, Crows Nest (Australia)

Description

The need for random deviates arises in many scientific applications. In medical physics, Monte Carlo simulations have been used in radiology, radiation therapy and nuclear medicine. Specific instances include the modelling of x-ray scattering processes and the addition of random noise to images or curves in order to assess the effects of various processing procedures. Reliable sources of random deviates with statistical properties indistinguishable from true random deviates are a fundamental necessity for such tasks. This paper provides a review of computer algorithms which can be used to generate uniform random deviates and other distributions of interest to medical physicists, along with a few caveats relating to various problems and pitfalls which can occur. Source code listings for the generators discussed (in FORTRAN, Turbo-PASCAL and Data General ASSEMBLER) are available on request from the authors. 27 refs., 3 tabs., 5 figs

Additional details

Publishing Information

Journal Title
Australasian Physical and Engineering Sciences in Medicine
Journal Volume
14
Journal Issue
2
Series
Australas. Phys. Eng. Sci. Med.
Journal Page Range
86-96
ISSN
0158-9938
CODEN
AUPMD

Conference

Title
21. Conference of the Australian Radiation Protection Society and the Australasian College of Physical Scientists and Engineers in Medicine.
Dates
Sep 1990.
Place
Adelaide (Australia).

INIS

Country of Publication
Australia
Country of Input or Organization
Australia
INIS RN
22091990
Subject category
S99: GENERAL AND MISCELLANEOUS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
ALGORITHMS; COMPUTER CODES; COMPUTERIZED SIMULATION; DATA PROCESSING; NUCLEAR MEDICINE; PROGRAMMING LANGUAGES; RADIOTHERAPY; SPATIAL DOSE DISTRIBUTIONS
Descriptors DEC
DISTRIBUTION; MEDICINE; RADIATION DOSE DISTRIBUTIONS; SIMULATION; SPATIAL DISTRIBUTION; THERAPY