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Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions

PURPOSE: To develop an efficient and automated methodology for beam data validation for a preconfigured ring gantry linear accelerator using scripting and a one‐dimensional (1D) tank with automated couch motions. MATERIALS AND METHODS: Using an application programming interface, a program was develo...

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Autores principales: Knutson, Nels C., Schmidt, Matthew C., Reynoso, Francisco J., Hao, Yao, Mazur, Thomas R., Laugeman, Eric, Hugo, Geoffrey, Mutic, Sasa, Li, H. Harold, Ngwa, Wilfred, Cai, Bin, Sajo, Erno
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7484825/
https://www.ncbi.nlm.nih.gov/pubmed/32614511
http://dx.doi.org/10.1002/acm2.12946
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author Knutson, Nels C.
Schmidt, Matthew C.
Reynoso, Francisco J.
Hao, Yao
Mazur, Thomas R.
Laugeman, Eric
Hugo, Geoffrey
Mutic, Sasa
Li, H. Harold
Ngwa, Wilfred
Cai, Bin
Sajo, Erno
author_facet Knutson, Nels C.
Schmidt, Matthew C.
Reynoso, Francisco J.
Hao, Yao
Mazur, Thomas R.
Laugeman, Eric
Hugo, Geoffrey
Mutic, Sasa
Li, H. Harold
Ngwa, Wilfred
Cai, Bin
Sajo, Erno
author_sort Knutson, Nels C.
collection PubMed
description PURPOSE: To develop an efficient and automated methodology for beam data validation for a preconfigured ring gantry linear accelerator using scripting and a one‐dimensional (1D) tank with automated couch motions. MATERIALS AND METHODS: Using an application programming interface, a program was developed to allow the user to choose a set of beam data to validate with measurement. Once selected the program generates a set of instructions for radiation delivery with synchronized couch motions for the linear accelerator in the form of an extensible markup language (XML) file to be delivered on the ring gantry linear accelerator. The user then delivers these beams while measuring with the 1D tank and data logging electrometer. The program also automatically calculates this set of beams on the measurement geometry within the treatment planning system (TPS) and extracts the corresponding calculated dosimetric data for comparison to measurement. Once completed the program then returns a comparison of the measurement to the predicted result from the TPS to the user and prints a report. In this work lateral, longitudinal, and diagonal profiles were taken for fields sizes of 6 × 6, 8 × 8, 10 × 10, 20 × 20, and 28 × 28 cm(2) at depths of 1.3, 5, 10, 20, and 30 cm. Depth dose profiles were taken for all field sizes. RESULTS: Using this methodology, the TPS was validated to agree with measurement. All compared points yielded a gamma value less than 1 for a 1.5%/1.5 mm criteria (100% passing rate). Off axis profiles had >98.5% of data points producing a gamma value <1 with a 1%/1 mm criteria. All depth profiles produced 100% of data points with a gamma value <1 with a 1%/1 mm criteria. All data points measured were within 1.5% or 2 mm distance to agreement. CONCLUSIONS: This methodology allows for an increase in automation in the beam data validation process. Leveraging the application program interface allows the user to use a single system to create the measurement files, predict the result, and then compare to actual measurement increasing efficiency and reducing the chance for user input errors.
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spelling pubmed-74848252020-09-17 Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions Knutson, Nels C. Schmidt, Matthew C. Reynoso, Francisco J. Hao, Yao Mazur, Thomas R. Laugeman, Eric Hugo, Geoffrey Mutic, Sasa Li, H. Harold Ngwa, Wilfred Cai, Bin Sajo, Erno J Appl Clin Med Phys Radiation Oncology Physics PURPOSE: To develop an efficient and automated methodology for beam data validation for a preconfigured ring gantry linear accelerator using scripting and a one‐dimensional (1D) tank with automated couch motions. MATERIALS AND METHODS: Using an application programming interface, a program was developed to allow the user to choose a set of beam data to validate with measurement. Once selected the program generates a set of instructions for radiation delivery with synchronized couch motions for the linear accelerator in the form of an extensible markup language (XML) file to be delivered on the ring gantry linear accelerator. The user then delivers these beams while measuring with the 1D tank and data logging electrometer. The program also automatically calculates this set of beams on the measurement geometry within the treatment planning system (TPS) and extracts the corresponding calculated dosimetric data for comparison to measurement. Once completed the program then returns a comparison of the measurement to the predicted result from the TPS to the user and prints a report. In this work lateral, longitudinal, and diagonal profiles were taken for fields sizes of 6 × 6, 8 × 8, 10 × 10, 20 × 20, and 28 × 28 cm(2) at depths of 1.3, 5, 10, 20, and 30 cm. Depth dose profiles were taken for all field sizes. RESULTS: Using this methodology, the TPS was validated to agree with measurement. All compared points yielded a gamma value less than 1 for a 1.5%/1.5 mm criteria (100% passing rate). Off axis profiles had >98.5% of data points producing a gamma value <1 with a 1%/1 mm criteria. All depth profiles produced 100% of data points with a gamma value <1 with a 1%/1 mm criteria. All data points measured were within 1.5% or 2 mm distance to agreement. CONCLUSIONS: This methodology allows for an increase in automation in the beam data validation process. Leveraging the application program interface allows the user to use a single system to create the measurement files, predict the result, and then compare to actual measurement increasing efficiency and reducing the chance for user input errors. John Wiley and Sons Inc. 2020-07-02 /pmc/articles/PMC7484825/ /pubmed/32614511 http://dx.doi.org/10.1002/acm2.12946 Text en © 2020 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, Inc. on behalf of American Association of Physicists in Medicine This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Radiation Oncology Physics
Knutson, Nels C.
Schmidt, Matthew C.
Reynoso, Francisco J.
Hao, Yao
Mazur, Thomas R.
Laugeman, Eric
Hugo, Geoffrey
Mutic, Sasa
Li, H. Harold
Ngwa, Wilfred
Cai, Bin
Sajo, Erno
Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions
title Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions
title_full Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions
title_fullStr Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions
title_full_unstemmed Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions
title_short Automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1D tank with synchronized beam delivery and couch motions
title_sort automated and robust beam data validation of a preconfigured ring gantry linear accelerator using a 1d tank with synchronized beam delivery and couch motions
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7484825/
https://www.ncbi.nlm.nih.gov/pubmed/32614511
http://dx.doi.org/10.1002/acm2.12946
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