Cargando…

Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system

The accuracy of computed tomography number to electron density (CT‐ED) calibration is a key component for dose calculations in an inhomogeneous medium. In a previous work, it was shown that the tolerance levels of CT‐ED calibration became stricter with an increase in tissue thickness and decrease in...

Descripción completa

Detalles Bibliográficos
Autores principales: Nakao, Minoru, Ozawa, Shuichi, Yamada, Kiyoshi, Yogo, Katsunori, Hosono, Fumika, Hayata, Masahiro, Saito, Akito, Miki, Kentaro, Nakashima, Takeo, Ochi, Yusuke, Kawahara, Daisuke, Morimoto, Yoshiharu, Yoshizaki, Toru, Nozaki, Hiroshige, Habara, Kosaku, Nagata, Yasushi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5768003/
https://www.ncbi.nlm.nih.gov/pubmed/29152898
http://dx.doi.org/10.1002/acm2.12226
_version_ 1783292631797727232
author Nakao, Minoru
Ozawa, Shuichi
Yamada, Kiyoshi
Yogo, Katsunori
Hosono, Fumika
Hayata, Masahiro
Saito, Akito
Miki, Kentaro
Nakashima, Takeo
Ochi, Yusuke
Kawahara, Daisuke
Morimoto, Yoshiharu
Yoshizaki, Toru
Nozaki, Hiroshige
Habara, Kosaku
Nagata, Yasushi
author_facet Nakao, Minoru
Ozawa, Shuichi
Yamada, Kiyoshi
Yogo, Katsunori
Hosono, Fumika
Hayata, Masahiro
Saito, Akito
Miki, Kentaro
Nakashima, Takeo
Ochi, Yusuke
Kawahara, Daisuke
Morimoto, Yoshiharu
Yoshizaki, Toru
Nozaki, Hiroshige
Habara, Kosaku
Nagata, Yasushi
author_sort Nakao, Minoru
collection PubMed
description The accuracy of computed tomography number to electron density (CT‐ED) calibration is a key component for dose calculations in an inhomogeneous medium. In a previous work, it was shown that the tolerance levels of CT‐ED calibration became stricter with an increase in tissue thickness and decrease in the effective energy of a photon beam. For the last decade, a low effective energy photon beam (e.g., flattening‐filter‐free (FFF)) has been used in clinical sites. However, its tolerance level has not been established yet. We established a relative electron density (ED) tolerance level for each tissue type with an FFF beam. The tolerance levels were calculated using the tissue maximum ratio (TMR) and each corresponding maximum tissue thickness. To determine the relative ED tolerance level, TMR data from a Varian accelerator and the adult reference computational phantom data in the International Commission on Radiological Protection publication 110 (ICRP‐110 phantom) were used in this study. The 52 tissue components of the ICRP‐110 phantom were classified by mass density as five tissues groups including lung, adipose/muscle, cartilage/spongy‐bone, cortical bone, and tooth tissue. In addition, the relative ED tolerance level of each tissue group was calculated when the relative dose error to local dose reached 2%. The relative ED tolerances of a 6 MVFFF beam for lung, adipose/muscle, and cartilage/spongy‐bone were ±0.044, ±0.022, and ±0.044, respectively. The thicknesses of the cortical bone and tooth groups were too small to define the tolerance levels. Because the tolerance levels of CT‐ED calibration are stricter with a decrease in the effective energy of the photon beam, the tolerance levels are determined by the lowest effective energy in useable beams for radiotherapy treatment planning systems.
format Online
Article
Text
id pubmed-5768003
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-57680032018-04-02 Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system Nakao, Minoru Ozawa, Shuichi Yamada, Kiyoshi Yogo, Katsunori Hosono, Fumika Hayata, Masahiro Saito, Akito Miki, Kentaro Nakashima, Takeo Ochi, Yusuke Kawahara, Daisuke Morimoto, Yoshiharu Yoshizaki, Toru Nozaki, Hiroshige Habara, Kosaku Nagata, Yasushi J Appl Clin Med Phys Technical Notes The accuracy of computed tomography number to electron density (CT‐ED) calibration is a key component for dose calculations in an inhomogeneous medium. In a previous work, it was shown that the tolerance levels of CT‐ED calibration became stricter with an increase in tissue thickness and decrease in the effective energy of a photon beam. For the last decade, a low effective energy photon beam (e.g., flattening‐filter‐free (FFF)) has been used in clinical sites. However, its tolerance level has not been established yet. We established a relative electron density (ED) tolerance level for each tissue type with an FFF beam. The tolerance levels were calculated using the tissue maximum ratio (TMR) and each corresponding maximum tissue thickness. To determine the relative ED tolerance level, TMR data from a Varian accelerator and the adult reference computational phantom data in the International Commission on Radiological Protection publication 110 (ICRP‐110 phantom) were used in this study. The 52 tissue components of the ICRP‐110 phantom were classified by mass density as five tissues groups including lung, adipose/muscle, cartilage/spongy‐bone, cortical bone, and tooth tissue. In addition, the relative ED tolerance level of each tissue group was calculated when the relative dose error to local dose reached 2%. The relative ED tolerances of a 6 MVFFF beam for lung, adipose/muscle, and cartilage/spongy‐bone were ±0.044, ±0.022, and ±0.044, respectively. The thicknesses of the cortical bone and tooth groups were too small to define the tolerance levels. Because the tolerance levels of CT‐ED calibration are stricter with a decrease in the effective energy of the photon beam, the tolerance levels are determined by the lowest effective energy in useable beams for radiotherapy treatment planning systems. John Wiley and Sons Inc. 2017-11-20 /pmc/articles/PMC5768003/ /pubmed/29152898 http://dx.doi.org/10.1002/acm2.12226 Text en © 2017 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, Inc. on behalf of American Association of Physicists in Medicine. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Technical Notes
Nakao, Minoru
Ozawa, Shuichi
Yamada, Kiyoshi
Yogo, Katsunori
Hosono, Fumika
Hayata, Masahiro
Saito, Akito
Miki, Kentaro
Nakashima, Takeo
Ochi, Yusuke
Kawahara, Daisuke
Morimoto, Yoshiharu
Yoshizaki, Toru
Nozaki, Hiroshige
Habara, Kosaku
Nagata, Yasushi
Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system
title Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system
title_full Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system
title_fullStr Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system
title_full_unstemmed Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system
title_short Tolerance levels of CT number to electron density table for photon beam in radiotherapy treatment planning system
title_sort tolerance levels of ct number to electron density table for photon beam in radiotherapy treatment planning system
topic Technical Notes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5768003/
https://www.ncbi.nlm.nih.gov/pubmed/29152898
http://dx.doi.org/10.1002/acm2.12226
work_keys_str_mv AT nakaominoru tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT ozawashuichi tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT yamadakiyoshi tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT yogokatsunori tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT hosonofumika tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT hayatamasahiro tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT saitoakito tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT mikikentaro tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT nakashimatakeo tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT ochiyusuke tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT kawaharadaisuke tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT morimotoyoshiharu tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT yoshizakitoru tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT nozakihiroshige tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT habarakosaku tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem
AT nagatayasushi tolerancelevelsofctnumbertoelectrondensitytableforphotonbeaminradiotherapytreatmentplanningsystem