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Journal ArticleDOI

Efficiency improvements for ion chamber calculations in high energy photon beams.

Jörg Wulff, +2 more
- 01 Apr 2008 - 
- Vol. 35, Iss: 4, pp 1328-1336
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TLDR
Several variance reduction techniques that dramatically improve the simulation efficiency of ion chamber dose and perturbation factor calculations are presented and Optimum settings for the variance reduction parameters are investigated.
Abstract
This article presents the implementation of several variance reduction techniques that dramatically improve the simulation efficiency of ion chamber dose and perturbation factor calculations. The cavity user code for the EGSnrc Monte Carlo code system is extended by photon cross-section enhancement (XCSE), an intermediate phase-space storage (IPSS) technique, and a correlated sampling (CS) scheme. XCSE increases the density of photon interaction sites inside and in the vicinity of the chamber and results-in combination with a Russian Roulette game for electrons that cannot reach the cavity volume-in an increased efficiency of up to a factor of 350 for calculating dose in a Farmer type chamber placed at 10 cm depth in a water phantom. In combination with the IPSS and CS techniques, the efficiency for the calculation of the central electrode perturbation factor Pcel can be increased by up to three orders of magnitude for a single chamber location and by nearly four orders of magnitude when considering the Pcel variation with depth or with distance from the central axis in a large field photon beam. The intermediate storage of the phase-space properties of particles entering a volume that contains many possible chamber locations leads to efficiency improvements by a factor larger than 500 when computing a profile of chamber doses in the field of a linear accelerator photon beam. All techniques are combined in a new EGSnrc user code egs_chamber. Optimum settings for the variance reduction parameters are investigated and are reported for a Farmer type ion chamber. A few example calculations illustrating the capabilities of the egs_chamber code are presented.

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Citations
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Journal ArticleDOI

Addendum to the AAPM's TG-51 protocol for clinical reference dosimetry of high-energy photon beams.

TL;DR: The components of the uncertainty budget in determining absorbed dose to water at the reference point are introduced and the magnitude of each component discussed and the consistency of experimental determination of ND,w coefficients is discussed.
Journal ArticleDOI

Dosimetry of small static fields used in external photon beam radiotherapy: Summary of TRS-483, the IAEA-AAPM international Code of Practice for reference and relative dose determination

TL;DR: This joint IAEA/AAPM CoP will ensure consistent reference dosimetry traceable to the international System of Units and enable common and internationally harmonized procedures to be followed by radiotherapy centers worldwide for the dosimetric of small static megavoltage photon fields.
Journal ArticleDOI

GPUMCD: a new GPU-oriented Monte Carlo dose calculation platform

TL;DR: GPUMCD as discussed by the authors implements a coupled photon-electron Monte Carlo simulation for energies in the range 0.01 MeV to 20 MeV, using a Class II condensed history method for the simulation of electrons.
Journal ArticleDOI

GPUMCD: A new GPU-oriented Monte Carlo dose calculation platform

TL;DR: GPUMCD, a completely new, and designed from the ground up for the GPU, Monte Carlo dose calculation package for voxelized geometries, has been compared to EGSnrc and DPM in terms of dosimetric results and execution speed.
Journal ArticleDOI

Calculation of kQclin,Qmsrfclin,fmsr for several small detectors and for two linear accelerators using Monte Carlo simulations

TL;DR: In this paper, a complete set of correction factors for several detectors in static small photon fields for two linear accelerators (linacs) and for many detectors were determined for several types of detectors by using the egs_chamber Monte Carlo user code which can accurately reproduce the geometry and material composition of the detector.
References
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Absorbed Dose Determination in External Beam Radiotherapy: An International Code of Practice for Dosimetry based on Standards of Absorbed Dose to Water

TL;DR: This poster presents a probabilistic procedure for estimating the intensity values of radiolysis-like particles in the presence of X-ray diffraction waves.
Journal ArticleDOI

AAPM's TG-51 protocol for clinical reference dosimetry of high-energy photon and electron beams.

TL;DR: This protocol represents a major simplification compared to the AAPM's TG-21 protocol in the sense that large tables of stopping-power ratios and mass-energy absorption coefficients are not needed and the user does not need to calculate any theoretical dosimetry factors.
Journal ArticleDOI

BEAM: a Monte Carlo code to simulate radiotherapy treatment units.

TL;DR: BEAM, a general purpose Monte Carlo code to simulate the radiation beams from radiotherapy units including high-energy electron and photon beams, 60Co beams and orthovoltage units, is described.
Journal ArticleDOI

Accurate condensed history Monte Carlo simulation of electron transport. I. EGSnrc, the new EGS4 version

TL;DR: It is demonstrated that EGSnrc allows for an artifact free Monte Carlo simulation of ion chamber response and backscattering, situations that have been considered in the past as the two of the most stringent tests of condensed history Monte Carlo codes.
Journal ArticleDOI

Energy and angular distributions of photons from medical linear accelerators

TL;DR: This work has used Monte Carlo code (EGS) to compute photon spectra for a number of different linear accelerators and finds the mean photon energy to have a value lower than the generally perceived value of one-third the maximum energy.
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