CT-Based Collision Prediction Software for External-Beam Radiation Therapy
PurposeBeam angle optimization is a critical issue for modern radiotherapy (RT) and is a challenging task, especially for large body sizes and noncoplanar designs. Noncoplanar RT techniques may have dosimetric advantages but increase the risk of mechanical collision. We propose a software solution t...
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doaj-ed9c15f0785540598cf41db04ff63ba42021-03-11T06:49:15ZengFrontiers Media S.A.Frontiers in Oncology2234-943X2021-03-011110.3389/fonc.2021.617007617007CT-Based Collision Prediction Software for External-Beam Radiation TherapyYu-Jen Wang0Yu-Jen Wang1Yu-Jen Wang2Jia-Sheng Yao3Feipei Lai4Feipei Lai5Jason Chia-Hsien Cheng6Jason Chia-Hsien Cheng7Jason Chia-Hsien Cheng8Jason Chia-Hsien Cheng9Graduate Institute of Biomedical Electronics and Bioinformatics, National Taiwan University, Taipei, TaiwanDepartment of Radiation Oncology, Fu Jen Catholic University Hospital, New Taipei City, TaiwanSchool of Medicine, College of Medicine, Fu Jen Catholic University, New Taipei City, TaiwanDepartment of Computer Science and Information Engineering, National Taiwan University, Taipei, TaiwanGraduate Institute of Biomedical Electronics and Bioinformatics, National Taiwan University, Taipei, TaiwanDepartment of Computer Science and Information Engineering, National Taiwan University, Taipei, TaiwanGraduate Institute of Biomedical Electronics and Bioinformatics, National Taiwan University, Taipei, TaiwanDivision of Radiation Oncology, Departments of Oncology, National Taiwan University Hospital, Taipei, TaiwanGraduate Institutes of Oncology, Taipei, TaiwanClinical Medicine, National Taiwan University College of Medicine, Taipei, TaiwanPurposeBeam angle optimization is a critical issue for modern radiotherapy (RT) and is a challenging task, especially for large body sizes and noncoplanar designs. Noncoplanar RT techniques may have dosimetric advantages but increase the risk of mechanical collision. We propose a software solution to accurately predict colliding/noncolliding configurations for coplanar and noncoplanar beams.Materials and MethodsIndividualized software models for two different linear accelerators were built to simulate noncolliding gantry orientations for phantom/patient subjects. The sizes and shapes of the accelerators were delineated based on their manuals and on-site measurements. The external surfaces of the subjects were automatically contoured based on computed tomography (CT) simulations. An Alderson Radiation Therapy phantom was used to predict the accuracy of spatial collision prediction by the software. A gantry collision problem encountered by one patient during initial setup was also used to test the validity of the software. Results: In the comparison between the software estimates and on-site measurements, the noncoplanar collision angles were all predicted within a 5-degree difference in gantry position. The confusion matrix was calculated for each of the two empty accelerator models, and the accuracies were 98.7% and 97.3%. The true positive rates were 97.7% and 96.9%, while the true negative rates were 99.8% and 97.9%, respectively. For the phantom study, the collision angles were predicted within a 5-degree difference. The software successfully predicted the collision problem encountered by the breast cancer patient in the initial setup position and generated shifted coordinates that were validated to correspond to a noncolliding geometry.ConclusionThe developed software effectively and accurately predicted collisions for accelerator-only, phantom, and patient setups. This software may help prevent collisions and expand the range of spatially applicable beam angles.https://www.frontiersin.org/articles/10.3389/fonc.2021.617007/fullradiotherapycollisionnoncoplanarbeam anglesoftware |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yu-Jen Wang Yu-Jen Wang Yu-Jen Wang Jia-Sheng Yao Feipei Lai Feipei Lai Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng |
spellingShingle |
Yu-Jen Wang Yu-Jen Wang Yu-Jen Wang Jia-Sheng Yao Feipei Lai Feipei Lai Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng CT-Based Collision Prediction Software for External-Beam Radiation Therapy Frontiers in Oncology radiotherapy collision noncoplanar beam angle software |
author_facet |
Yu-Jen Wang Yu-Jen Wang Yu-Jen Wang Jia-Sheng Yao Feipei Lai Feipei Lai Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng Jason Chia-Hsien Cheng |
author_sort |
Yu-Jen Wang |
title |
CT-Based Collision Prediction Software for External-Beam Radiation Therapy |
title_short |
CT-Based Collision Prediction Software for External-Beam Radiation Therapy |
title_full |
CT-Based Collision Prediction Software for External-Beam Radiation Therapy |
title_fullStr |
CT-Based Collision Prediction Software for External-Beam Radiation Therapy |
title_full_unstemmed |
CT-Based Collision Prediction Software for External-Beam Radiation Therapy |
title_sort |
ct-based collision prediction software for external-beam radiation therapy |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Oncology |
issn |
2234-943X |
publishDate |
2021-03-01 |
description |
PurposeBeam angle optimization is a critical issue for modern radiotherapy (RT) and is a challenging task, especially for large body sizes and noncoplanar designs. Noncoplanar RT techniques may have dosimetric advantages but increase the risk of mechanical collision. We propose a software solution to accurately predict colliding/noncolliding configurations for coplanar and noncoplanar beams.Materials and MethodsIndividualized software models for two different linear accelerators were built to simulate noncolliding gantry orientations for phantom/patient subjects. The sizes and shapes of the accelerators were delineated based on their manuals and on-site measurements. The external surfaces of the subjects were automatically contoured based on computed tomography (CT) simulations. An Alderson Radiation Therapy phantom was used to predict the accuracy of spatial collision prediction by the software. A gantry collision problem encountered by one patient during initial setup was also used to test the validity of the software. Results: In the comparison between the software estimates and on-site measurements, the noncoplanar collision angles were all predicted within a 5-degree difference in gantry position. The confusion matrix was calculated for each of the two empty accelerator models, and the accuracies were 98.7% and 97.3%. The true positive rates were 97.7% and 96.9%, while the true negative rates were 99.8% and 97.9%, respectively. For the phantom study, the collision angles were predicted within a 5-degree difference. The software successfully predicted the collision problem encountered by the breast cancer patient in the initial setup position and generated shifted coordinates that were validated to correspond to a noncolliding geometry.ConclusionThe developed software effectively and accurately predicted collisions for accelerator-only, phantom, and patient setups. This software may help prevent collisions and expand the range of spatially applicable beam angles. |
topic |
radiotherapy collision noncoplanar beam angle software |
url |
https://www.frontiersin.org/articles/10.3389/fonc.2021.617007/full |
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