Cargando…

A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector

The purpose of this study was to develop and evaluate filmless quality assurance (QA) tools for helical tomotherapy by using the signals from the on‐board megavoltage computed tomography (MVCT) detector and applying a dedicated step‐wedge phantom. The step‐wedge phantom is a 15 cm long step‐like alu...

Descripción completa

Detalles Bibliográficos
Autores principales: Althof, Vincent, van Haaren, Paul, Westendorp, Rik, Nuver, Tonnis, Kramer, Dinant, Ikink, Marijke, Bel, Arjen, Minken, Andre
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/PMC5716125/
https://www.ncbi.nlm.nih.gov/pubmed/22231210
http://dx.doi.org/10.1120/jacmp.v13i1.3585
_version_ 1783283880773550080
author Althof, Vincent
van Haaren, Paul
Westendorp, Rik
Nuver, Tonnis
Kramer, Dinant
Ikink, Marijke
Bel, Arjen
Minken, Andre
author_facet Althof, Vincent
van Haaren, Paul
Westendorp, Rik
Nuver, Tonnis
Kramer, Dinant
Ikink, Marijke
Bel, Arjen
Minken, Andre
author_sort Althof, Vincent
collection PubMed
description The purpose of this study was to develop and evaluate filmless quality assurance (QA) tools for helical tomotherapy by using the signals from the on‐board megavoltage computed tomography (MVCT) detector and applying a dedicated step‐wedge phantom. The step‐wedge phantom is a 15 cm long step‐like aluminum block positioned on the couch. The phantom was moved through the slit beam and MVCT detector signals were analyzed. Two QA procedures were developed, with gantry fixed at 0°: 1) step‐wedge procedure: to check beam energy consistency, field width, laser alignment with respect to the virtual isocenter, couch movement, and couch velocity; and 2) completion procedure: to check the accuracy of a field abutment made by the tomotherapy system after a treatment interruption. The procedures were designed as constancy tool and were validated by measurement of deliberately induced variations and comparison with a reference method. Two Hi‐Art II machines were monitored over a period of three years using the step‐wedge procedures. The data acquisition takes 5 minutes. The analysis is fully automated and results are available directly after acquisition. Couch speed deviations up to 2% were induced. The mean absolute difference between expected and measured couch speed was 0.2% [Formula: see text] (1 standard deviation SD). Field width was varied around the 10 mm nominal size, between 9.7 and 11.1 mm, in steps of 0.2 mm. Mean difference between the step‐wedge analysis and the reference method was [Formula: see text] [Formula: see text] (1 SD). Laser (mis)alignment relative to a reference situation was detected with 0.3 mm precision (1SD). The step‐wedge profile was fitted to a PDD in water. The PDD ratio D20/D10, measured at depths of 20 cm and 10 cm, was used to check beam energy consistency. Beam energy variations were induced. Mean difference between step‐wedge and water PDD ratios was 0.2% [Formula: see text] (1SD). The completion procedure was able to reveal abutment mismatches with a mean error of ‐0.6 mm [Formula: see text] (1SD). The trending data over a period of three years showed a mean deviation of 0.4% [Formula: see text] (1 SD) in couch speed. The spread in field width was 0.15 mm (1 SD). The sagittal and transverse lasers showed a variation of 0.5 mm (1 SD). Beam energy varied 1.0% (1 SD). A mean abutment mismatch was found of [Formula: see text] [Formula: see text] (1 SD) between interrupted treatments. The on‐board MVCT detector, in combination with the step‐wedge phantom, is a suitable tool for a QA program for helical tomotherapy. The method allowed frequent monitoring of machine behavior for the past three years. PACS number: 87.55.Qr
format Online
Article
Text
id pubmed-5716125
institution National Center for Biotechnology Information
language English
publishDate 2012
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-57161252018-04-02 A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector Althof, Vincent van Haaren, Paul Westendorp, Rik Nuver, Tonnis Kramer, Dinant Ikink, Marijke Bel, Arjen Minken, Andre J Appl Clin Med Phys Radiation Oncology Physics The purpose of this study was to develop and evaluate filmless quality assurance (QA) tools for helical tomotherapy by using the signals from the on‐board megavoltage computed tomography (MVCT) detector and applying a dedicated step‐wedge phantom. The step‐wedge phantom is a 15 cm long step‐like aluminum block positioned on the couch. The phantom was moved through the slit beam and MVCT detector signals were analyzed. Two QA procedures were developed, with gantry fixed at 0°: 1) step‐wedge procedure: to check beam energy consistency, field width, laser alignment with respect to the virtual isocenter, couch movement, and couch velocity; and 2) completion procedure: to check the accuracy of a field abutment made by the tomotherapy system after a treatment interruption. The procedures were designed as constancy tool and were validated by measurement of deliberately induced variations and comparison with a reference method. Two Hi‐Art II machines were monitored over a period of three years using the step‐wedge procedures. The data acquisition takes 5 minutes. The analysis is fully automated and results are available directly after acquisition. Couch speed deviations up to 2% were induced. The mean absolute difference between expected and measured couch speed was 0.2% [Formula: see text] (1 standard deviation SD). Field width was varied around the 10 mm nominal size, between 9.7 and 11.1 mm, in steps of 0.2 mm. Mean difference between the step‐wedge analysis and the reference method was [Formula: see text] [Formula: see text] (1 SD). Laser (mis)alignment relative to a reference situation was detected with 0.3 mm precision (1SD). The step‐wedge profile was fitted to a PDD in water. The PDD ratio D20/D10, measured at depths of 20 cm and 10 cm, was used to check beam energy consistency. Beam energy variations were induced. Mean difference between step‐wedge and water PDD ratios was 0.2% [Formula: see text] (1SD). The completion procedure was able to reveal abutment mismatches with a mean error of ‐0.6 mm [Formula: see text] (1SD). The trending data over a period of three years showed a mean deviation of 0.4% [Formula: see text] (1 SD) in couch speed. The spread in field width was 0.15 mm (1 SD). The sagittal and transverse lasers showed a variation of 0.5 mm (1 SD). Beam energy varied 1.0% (1 SD). A mean abutment mismatch was found of [Formula: see text] [Formula: see text] (1 SD) between interrupted treatments. The on‐board MVCT detector, in combination with the step‐wedge phantom, is a suitable tool for a QA program for helical tomotherapy. The method allowed frequent monitoring of machine behavior for the past three years. PACS number: 87.55.Qr John Wiley and Sons Inc. 2012-01-05 /pmc/articles/PMC5716125/ /pubmed/22231210 http://dx.doi.org/10.1120/jacmp.v13i1.3585 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
Althof, Vincent
van Haaren, Paul
Westendorp, Rik
Nuver, Tonnis
Kramer, Dinant
Ikink, Marijke
Bel, Arjen
Minken, Andre
A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector
title A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector
title_full A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector
title_fullStr A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector
title_full_unstemmed A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector
title_short A quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board MVCT detector
title_sort quality assurance tool for helical tomotherapy using a step‐wedge phantom and the on‐board mvct detector
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5716125/
https://www.ncbi.nlm.nih.gov/pubmed/22231210
http://dx.doi.org/10.1120/jacmp.v13i1.3585
work_keys_str_mv AT althofvincent aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT vanhaarenpaul aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT westendorprik aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT nuvertonnis aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT kramerdinant aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT ikinkmarijke aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT belarjen aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT minkenandre aqualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT althofvincent qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT vanhaarenpaul qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT westendorprik qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT nuvertonnis qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT kramerdinant qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT ikinkmarijke qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT belarjen qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector
AT minkenandre qualityassurancetoolforhelicaltomotherapyusingastepwedgephantomandtheonboardmvctdetector