Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC

In this work isodose curves are obtained by the use of a new dosimetric algorithm using numerical data from percentage depth dose (PDD) and the maximum absorbed dose profile, calculated by Monte Carlo in a 18 MV LINAC. The software allows reproducing the absorbed dose percentage in the whole irradia...

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Main Authors: Julio Cesar Estrada Espinosa, Segundo Agustín Martínez Ovalle, Cinthia Kotzian Pereira Benavides
Format: Article
Language:English
Published: Hindawi Limited 2014-01-01
Series:Computational and Mathematical Methods in Medicine
Online Access:http://dx.doi.org/10.1155/2014/849505
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spelling doaj-4578d7c9163d4e7baa006b76ace0cae62020-11-24T23:20:34ZengHindawi LimitedComputational and Mathematical Methods in Medicine1748-670X1748-67182014-01-01201410.1155/2014/849505849505Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINACJulio Cesar Estrada Espinosa0Segundo Agustín Martínez Ovalle1Cinthia Kotzian Pereira Benavides2Departamento de Radioterapia Oncológica, Hospital Universitario, Carretera Saltillo-Monterrey Km 4.5, 25204 Saltillo, COAH, MexicoGrupo de Física Nuclear Aplicada y Simulación, Universidad Pedagógica y Tecnológica de Colombia, Avenida Central del Norte 39-115, Tunja 150003, ColombiaDepartamento de Medicina Nuclear, Hospital Universitario, Carretera Saltillo-Monterrey Km 4.5, 25204 Saltillo, COAH, MexicoIn this work isodose curves are obtained by the use of a new dosimetric algorithm using numerical data from percentage depth dose (PDD) and the maximum absorbed dose profile, calculated by Monte Carlo in a 18 MV LINAC. The software allows reproducing the absorbed dose percentage in the whole irradiated volume quickly and with a good approximation. To validate results an 18 MV LINAC with a whole geometry and a water phantom were constructed. On this construction, the distinct simulations were processed by the MCNPX code and then obtained the PDD and profiles for the whole depths of the radiation beam. The results data were used by the code to produce the dose percentages in any point of the irradiated volume. The absorbed dose for any voxel’s size was also reproduced at any point of the irradiated volume, even when the voxels are considered to be of a pixel’s size. The dosimetric algorithm is able to reproduce the absorbed dose induced by a radiation beam over a water phantom, considering PDD and profiles, whose maximum percent value is in the build-up region. Calculation time for the algorithm is only a few seconds, compared with the days taken when it is carried out by Monte Carlo.http://dx.doi.org/10.1155/2014/849505
collection DOAJ
language English
format Article
sources DOAJ
author Julio Cesar Estrada Espinosa
Segundo Agustín Martínez Ovalle
Cinthia Kotzian Pereira Benavides
spellingShingle Julio Cesar Estrada Espinosa
Segundo Agustín Martínez Ovalle
Cinthia Kotzian Pereira Benavides
Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC
Computational and Mathematical Methods in Medicine
author_facet Julio Cesar Estrada Espinosa
Segundo Agustín Martínez Ovalle
Cinthia Kotzian Pereira Benavides
author_sort Julio Cesar Estrada Espinosa
title Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC
title_short Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC
title_full Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC
title_fullStr Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC
title_full_unstemmed Dosimetric Algorithm to Reproduce Isodose Curves Obtained from a LINAC
title_sort dosimetric algorithm to reproduce isodose curves obtained from a linac
publisher Hindawi Limited
series Computational and Mathematical Methods in Medicine
issn 1748-670X
1748-6718
publishDate 2014-01-01
description In this work isodose curves are obtained by the use of a new dosimetric algorithm using numerical data from percentage depth dose (PDD) and the maximum absorbed dose profile, calculated by Monte Carlo in a 18 MV LINAC. The software allows reproducing the absorbed dose percentage in the whole irradiated volume quickly and with a good approximation. To validate results an 18 MV LINAC with a whole geometry and a water phantom were constructed. On this construction, the distinct simulations were processed by the MCNPX code and then obtained the PDD and profiles for the whole depths of the radiation beam. The results data were used by the code to produce the dose percentages in any point of the irradiated volume. The absorbed dose for any voxel’s size was also reproduced at any point of the irradiated volume, even when the voxels are considered to be of a pixel’s size. The dosimetric algorithm is able to reproduce the absorbed dose induced by a radiation beam over a water phantom, considering PDD and profiles, whose maximum percent value is in the build-up region. Calculation time for the algorithm is only a few seconds, compared with the days taken when it is carried out by Monte Carlo.
url http://dx.doi.org/10.1155/2014/849505
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