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Automated contouring and statistical process control for plan quality in a breast clinical trial

BACKGROUND AND PURPOSE: Automatic review of breast plan quality for clinical trials is time-consuming and has some unique challenges due to the lack of target contours for some planning techniques. We propose using an auto-contouring model and statistical process control to independently assess plan...

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Autores principales: Baroudi, Hana, Huy Minh Nguyen, Callistus I., Maroongroge, Sean, Smith, Benjamin D., Niedzielski, Joshua S., Shaitelman, Simona F., Melancon, Adam, Shete, Sanjay, Whitaker, Thomas J., Mitchell, Melissa P., Yvonne Arzu, Isidora, Duryea, Jack, Hernandez, Soleil, El Basha, Daniel, Mumme, Raymond, Netherton, Tucker, Hoffman, Karen, Court, Laurence
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10498301/
https://www.ncbi.nlm.nih.gov/pubmed/37712064
http://dx.doi.org/10.1016/j.phro.2023.100486
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author Baroudi, Hana
Huy Minh Nguyen, Callistus I.
Maroongroge, Sean
Smith, Benjamin D.
Niedzielski, Joshua S.
Shaitelman, Simona F.
Melancon, Adam
Shete, Sanjay
Whitaker, Thomas J.
Mitchell, Melissa P.
Yvonne Arzu, Isidora
Duryea, Jack
Hernandez, Soleil
El Basha, Daniel
Mumme, Raymond
Netherton, Tucker
Hoffman, Karen
Court, Laurence
author_facet Baroudi, Hana
Huy Minh Nguyen, Callistus I.
Maroongroge, Sean
Smith, Benjamin D.
Niedzielski, Joshua S.
Shaitelman, Simona F.
Melancon, Adam
Shete, Sanjay
Whitaker, Thomas J.
Mitchell, Melissa P.
Yvonne Arzu, Isidora
Duryea, Jack
Hernandez, Soleil
El Basha, Daniel
Mumme, Raymond
Netherton, Tucker
Hoffman, Karen
Court, Laurence
author_sort Baroudi, Hana
collection PubMed
description BACKGROUND AND PURPOSE: Automatic review of breast plan quality for clinical trials is time-consuming and has some unique challenges due to the lack of target contours for some planning techniques. We propose using an auto-contouring model and statistical process control to independently assess planning consistency in retrospective data from a breast radiotherapy clinical trial. MATERIALS AND METHODS: A deep learning auto-contouring model was created and tested quantitatively and qualitatively on 104 post-lumpectomy patients’ computed tomography images (nnUNet; train/test: 80/20). The auto-contouring model was then applied to 127 patients enrolled in a clinical trial. Statistical process control was used to assess the consistency of the mean dose to auto-contours between plans and treatment modalities by setting control limits within three standard deviations of the data’s mean. Two physicians reviewed plans outside the limits for possible planning inconsistencies. RESULTS: Mean Dice similarity coefficients comparing manual and auto-contours was above 0.7 for breast clinical target volume, supraclavicular and internal mammary nodes. Two radiation oncologists scored 95% of contours as clinically acceptable. The mean dose in the clinical trial plans was more variable for lymph node auto-contours than for breast, with a narrower distribution for volumetric modulated arc therapy than for 3D conformal treatment, requiring distinct control limits. Five plans (5%) were flagged and reviewed by physicians: one required editing, two had clinically acceptable variations in planning, and two had poor auto-contouring. CONCLUSIONS: An automated contouring model in a statistical process control framework was appropriate for assessing planning consistency in a breast radiotherapy clinical trial.
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spelling pubmed-104983012023-09-14 Automated contouring and statistical process control for plan quality in a breast clinical trial Baroudi, Hana Huy Minh Nguyen, Callistus I. Maroongroge, Sean Smith, Benjamin D. Niedzielski, Joshua S. Shaitelman, Simona F. Melancon, Adam Shete, Sanjay Whitaker, Thomas J. Mitchell, Melissa P. Yvonne Arzu, Isidora Duryea, Jack Hernandez, Soleil El Basha, Daniel Mumme, Raymond Netherton, Tucker Hoffman, Karen Court, Laurence Phys Imaging Radiat Oncol Original Research Article BACKGROUND AND PURPOSE: Automatic review of breast plan quality for clinical trials is time-consuming and has some unique challenges due to the lack of target contours for some planning techniques. We propose using an auto-contouring model and statistical process control to independently assess planning consistency in retrospective data from a breast radiotherapy clinical trial. MATERIALS AND METHODS: A deep learning auto-contouring model was created and tested quantitatively and qualitatively on 104 post-lumpectomy patients’ computed tomography images (nnUNet; train/test: 80/20). The auto-contouring model was then applied to 127 patients enrolled in a clinical trial. Statistical process control was used to assess the consistency of the mean dose to auto-contours between plans and treatment modalities by setting control limits within three standard deviations of the data’s mean. Two physicians reviewed plans outside the limits for possible planning inconsistencies. RESULTS: Mean Dice similarity coefficients comparing manual and auto-contours was above 0.7 for breast clinical target volume, supraclavicular and internal mammary nodes. Two radiation oncologists scored 95% of contours as clinically acceptable. The mean dose in the clinical trial plans was more variable for lymph node auto-contours than for breast, with a narrower distribution for volumetric modulated arc therapy than for 3D conformal treatment, requiring distinct control limits. Five plans (5%) were flagged and reviewed by physicians: one required editing, two had clinically acceptable variations in planning, and two had poor auto-contouring. CONCLUSIONS: An automated contouring model in a statistical process control framework was appropriate for assessing planning consistency in a breast radiotherapy clinical trial. Elsevier 2023-08-23 /pmc/articles/PMC10498301/ /pubmed/37712064 http://dx.doi.org/10.1016/j.phro.2023.100486 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Article
Baroudi, Hana
Huy Minh Nguyen, Callistus I.
Maroongroge, Sean
Smith, Benjamin D.
Niedzielski, Joshua S.
Shaitelman, Simona F.
Melancon, Adam
Shete, Sanjay
Whitaker, Thomas J.
Mitchell, Melissa P.
Yvonne Arzu, Isidora
Duryea, Jack
Hernandez, Soleil
El Basha, Daniel
Mumme, Raymond
Netherton, Tucker
Hoffman, Karen
Court, Laurence
Automated contouring and statistical process control for plan quality in a breast clinical trial
title Automated contouring and statistical process control for plan quality in a breast clinical trial
title_full Automated contouring and statistical process control for plan quality in a breast clinical trial
title_fullStr Automated contouring and statistical process control for plan quality in a breast clinical trial
title_full_unstemmed Automated contouring and statistical process control for plan quality in a breast clinical trial
title_short Automated contouring and statistical process control for plan quality in a breast clinical trial
title_sort automated contouring and statistical process control for plan quality in a breast clinical trial
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10498301/
https://www.ncbi.nlm.nih.gov/pubmed/37712064
http://dx.doi.org/10.1016/j.phro.2023.100486
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