Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation
The Integral Quality Monitoring (IQM) System is a real-time beam output verifying system that validates the integrity and accuracy of patient treatment plan (TP) data during radiation treatment. The purpose of this study was to evaluate the sensitivity of the IQM to errors in segment using EGSnrc/BE...
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Online Access: | http://dx.doi.org/10.1155/2017/7025281 |
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doaj-8f22756fe3b245cb83bd112a6d70e4072020-11-24T22:39:11ZengHindawi LimitedComputational and Mathematical Methods in Medicine1748-670X1748-67182017-01-01201710.1155/2017/70252817025281Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo SimulationOluwaseyi M. Oderinde0F. C. P. du Plessis1Department of Medical Physics, University of the Free State, P.O. Box 339, Bloemfontein 9300, South AfricaDepartment of Medical Physics, University of the Free State, P.O. Box 339, Bloemfontein 9300, South AfricaThe Integral Quality Monitoring (IQM) System is a real-time beam output verifying system that validates the integrity and accuracy of patient treatment plan (TP) data during radiation treatment. The purpose of this study was to evaluate the sensitivity of the IQM to errors in segment using EGSnrc/BEAMnrc Monte Carlo (MC) codes. Sensitivity analysis (SA) techniques were applied to study the significance of small alterations of field sizes (segments) on the IQM signal response. One hundred and eighty multileaf segments were analyzed with methods that include scatter plots (SP), brute force, variance-based (VAR), and standard regression coefficient SA. The segments were altered randomly within ±1, ±2, and ±3 mm leaf steps for 10 MV photon beams. SP analysis gradient and VAR maximum index are 1.045 and 0.556 for the smallest segment while the largest segment has the value of 0.018 and 0.504, respectively. The brute force and standard regression displayed maximum sensitivity indices around the unaltered segments. These tests conclusively indicated that the IQM was more sensitive to alterations of small segments compared to larger segments. This is important since small segment variation will cause a higher dose output variation that should be picked up during online beam monitoring.http://dx.doi.org/10.1155/2017/7025281 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Oluwaseyi M. Oderinde F. C. P. du Plessis |
spellingShingle |
Oluwaseyi M. Oderinde F. C. P. du Plessis Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation Computational and Mathematical Methods in Medicine |
author_facet |
Oluwaseyi M. Oderinde F. C. P. du Plessis |
author_sort |
Oluwaseyi M. Oderinde |
title |
Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation |
title_short |
Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation |
title_full |
Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation |
title_fullStr |
Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation |
title_full_unstemmed |
Sensitivity Analysis of the Integral Quality Monitoring System® Using Monte Carlo Simulation |
title_sort |
sensitivity analysis of the integral quality monitoring system® using monte carlo simulation |
publisher |
Hindawi Limited |
series |
Computational and Mathematical Methods in Medicine |
issn |
1748-670X 1748-6718 |
publishDate |
2017-01-01 |
description |
The Integral Quality Monitoring (IQM) System is a real-time beam output verifying system that validates the integrity and accuracy of patient treatment plan (TP) data during radiation treatment. The purpose of this study was to evaluate the sensitivity of the IQM to errors in segment using EGSnrc/BEAMnrc Monte Carlo (MC) codes. Sensitivity analysis (SA) techniques were applied to study the significance of small alterations of field sizes (segments) on the IQM signal response. One hundred and eighty multileaf segments were analyzed with methods that include scatter plots (SP), brute force, variance-based (VAR), and standard regression coefficient SA. The segments were altered randomly within ±1, ±2, and ±3 mm leaf steps for 10 MV photon beams. SP analysis gradient and VAR maximum index are 1.045 and 0.556 for the smallest segment while the largest segment has the value of 0.018 and 0.504, respectively. The brute force and standard regression displayed maximum sensitivity indices around the unaltered segments. These tests conclusively indicated that the IQM was more sensitive to alterations of small segments compared to larger segments. This is important since small segment variation will cause a higher dose output variation that should be picked up during online beam monitoring. |
url |
http://dx.doi.org/10.1155/2017/7025281 |
work_keys_str_mv |
AT oluwaseyimoderinde sensitivityanalysisoftheintegralqualitymonitoringsystemusingmontecarlosimulation AT fcpduplessis sensitivityanalysisoftheintegralqualitymonitoringsystemusingmontecarlosimulation |
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