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A feasibility study on a machine-learning-based quality assurance tool for spot-scanning proton therapy using delivery log files and treatment plans

Authors
 Yoo, Sang Kyun  ;  Yaddanapudi, Sridhar  ;  Lu, Bo  ;  Stolen, Ethan  ;  Sen, Siddhant  ;  Choi, Byongsu  ;  Kim, Jin Sung  ;  Furutani, Keith  ;  Beltran, Chris  ;  Sohn, James J. 
Citation
 PHYSICS & IMAGING IN RADIATION ONCOLOGY, Vol.39, 2026-05 
Article Number
 100987 
Journal Title
 PHYSICS & IMAGING IN RADIATION ONCOLOGY 
ISSN
 2405-6316 
Issue Date
2026-05
Keywords
Spot-scanning proton therapy ; Machine learning ; Spot position prediction ; Plan accuracy ; Quality assurance
Abstract
Background and purpose: Although pencil beam scanning provides superior dose conformity, delivery uncertainties remain in beam monitoring and steering systems. This study evaluates a machine learning model that predicts delivered spot positions from plan parameters as a complementary quality assurance support tool. Materials and methods: The dataset consisted of a single routine quality assurance treatment plan and 64 corresponding delivery log files from a Hitachi proton scanning beam system (32 files each from gantry 1 and 2), collected over three months across various proton energies. Statistical analyses, including Levene's test, Welch's analysis of variance, and Games-Howell post hoc tests, assessed the effects of beam energy, treatment day, and room on spot position errors. Machine learning regression models were trained using 48 delivery log files to predict delivered spot positions from treatment planning data. Model performance was assessed using mean squared errors, R-2 score, and Euclidean distance. Results: Machine learning models demonstrated feasibility of spot position prediction with high accuracy (R-2 = 0.999; mean squared errors of 0.021 mm(2) and 0.003 mm(2)), with Euclidean errors <0.13 mm. Predicted dose distributions closely matched planned distributions, with an average absolute mean dose difference of 2.34 & times; 10(-5) Gy, and a maximum absolute voxel-wise dose difference of 1.796 Gy, defined as the largest absolute difference between predicted and planned dose values at corresponding voxels. Conclusions: This feasibility study demonstrates that machine-learning-based prediction of delivered spot positions can achieve sub-millimeter accuracy, potentially enhancing the precision and reliability of quality assurance processes in proton therapy.
Files in This Item:
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DOI
10.1016/j.phro.2026.100987
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Radiation Oncology (방사선종양학교실) > 1. Journal Papers
Yonsei Authors
Kim, Jinsung(김진성) ORCID logo https://orcid.org/0000-0003-1415-6471
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/213041
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