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Development and implementation of an EPID‐based method for localizing isocenter

The aim of this study was to develop a phantom and analysis software that could be used to quickly and accurately determine the location of radiation isocenter to an accuracy of less than 1 mm using the EPID (Electronic Portal Imaging Device). The proposed solution uses a collimator setting of [Form...

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Autores principales: Hyer, Daniel E., Mart, Christopher J., Nixon, Earl
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5718539/
https://www.ncbi.nlm.nih.gov/pubmed/23149787
http://dx.doi.org/10.1120/jacmp.v13i6.3965
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author Hyer, Daniel E.
Mart, Christopher J.
Nixon, Earl
author_facet Hyer, Daniel E.
Mart, Christopher J.
Nixon, Earl
author_sort Hyer, Daniel E.
collection PubMed
description The aim of this study was to develop a phantom and analysis software that could be used to quickly and accurately determine the location of radiation isocenter to an accuracy of less than 1 mm using the EPID (Electronic Portal Imaging Device). The proposed solution uses a collimator setting of [Formula: see text] to acquire EPID images of a new phantom constructed from LEGO blocks. Images from a number of gantry and collimator angles are analyzed by automated analysis software to determine the position of the jaws and center of the phantom in each image. The distance between a chosen jaw and the phantom center is then compared to the same distance measured after a [Formula: see text] collimator rotation to determine if the phantom is centered in the dimension being investigated. Repeated tests show that the system is reproducibly independent of the imaging session, and calculated offsets of the phantom from radiation isocenter are a function of phantom setup only. Accuracy of the algorithm's calculated offsets were verified by imaging the LEGO phantom before and after applying the calculated offset. These measurements show that the offsets are predicted with an accuracy of approximately 0.3 mm, which is on the order of the detector's pitch. Comparison with a star‐shot analysis yielded agreement of isocenter location within 0.5 mm. Additionally, the phantom and software are completely independent of linac vendor, and this study presents results from two linac manufacturers. A Varian Optical Guidance Platform (OGP) calibration array was also integrated into the phantom to allow calibration of the OGP while the phantom is positioned at radiation isocenter to reduce setup uncertainty in the calibration. This solution offers a quick, objective method to perform isocenter localization as well as laser alignment and OGP calibration on a monthly basis. PACS number: 87.55.Qr
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spelling pubmed-57185392018-04-02 Development and implementation of an EPID‐based method for localizing isocenter Hyer, Daniel E. Mart, Christopher J. Nixon, Earl J Appl Clin Med Phys Radiation Oncology Physics The aim of this study was to develop a phantom and analysis software that could be used to quickly and accurately determine the location of radiation isocenter to an accuracy of less than 1 mm using the EPID (Electronic Portal Imaging Device). The proposed solution uses a collimator setting of [Formula: see text] to acquire EPID images of a new phantom constructed from LEGO blocks. Images from a number of gantry and collimator angles are analyzed by automated analysis software to determine the position of the jaws and center of the phantom in each image. The distance between a chosen jaw and the phantom center is then compared to the same distance measured after a [Formula: see text] collimator rotation to determine if the phantom is centered in the dimension being investigated. Repeated tests show that the system is reproducibly independent of the imaging session, and calculated offsets of the phantom from radiation isocenter are a function of phantom setup only. Accuracy of the algorithm's calculated offsets were verified by imaging the LEGO phantom before and after applying the calculated offset. These measurements show that the offsets are predicted with an accuracy of approximately 0.3 mm, which is on the order of the detector's pitch. Comparison with a star‐shot analysis yielded agreement of isocenter location within 0.5 mm. Additionally, the phantom and software are completely independent of linac vendor, and this study presents results from two linac manufacturers. A Varian Optical Guidance Platform (OGP) calibration array was also integrated into the phantom to allow calibration of the OGP while the phantom is positioned at radiation isocenter to reduce setup uncertainty in the calibration. This solution offers a quick, objective method to perform isocenter localization as well as laser alignment and OGP calibration on a monthly basis. PACS number: 87.55.Qr John Wiley and Sons Inc. 2012-11-08 /pmc/articles/PMC5718539/ /pubmed/23149787 http://dx.doi.org/10.1120/jacmp.v13i6.3965 Text en © 2012 The Authors. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Radiation Oncology Physics
Hyer, Daniel E.
Mart, Christopher J.
Nixon, Earl
Development and implementation of an EPID‐based method for localizing isocenter
title Development and implementation of an EPID‐based method for localizing isocenter
title_full Development and implementation of an EPID‐based method for localizing isocenter
title_fullStr Development and implementation of an EPID‐based method for localizing isocenter
title_full_unstemmed Development and implementation of an EPID‐based method for localizing isocenter
title_short Development and implementation of an EPID‐based method for localizing isocenter
title_sort development and implementation of an epid‐based method for localizing isocenter
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5718539/
https://www.ncbi.nlm.nih.gov/pubmed/23149787
http://dx.doi.org/10.1120/jacmp.v13i6.3965
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