Wide Area Surface Dosimetry with Conformal Scintillator Array for External Beam Radiotherapy

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Vasyltsiv, Roman, Matous, Allison L., Mulenga, Natasha, Clark, Megan A., Pogue, Brian W., Gladstone, David J., Jarvis, Lesley A., Bruza, Petr
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914170871480320
author Vasyltsiv, Roman
Matous, Allison L.
Mulenga, Natasha
Clark, Megan A.
Pogue, Brian W.
Gladstone, David J.
Jarvis, Lesley A.
Bruza, Petr
author_facet Vasyltsiv, Roman
Matous, Allison L.
Mulenga, Natasha
Clark, Megan A.
Pogue, Brian W.
Gladstone, David J.
Jarvis, Lesley A.
Bruza, Petr
contents Background: In vivo dosimetry is essential for treatment verification in modern radiotherapy, but existing techniques are limited by spatiotemporal resolution and performance on non-uniform anatomy. Scintillation imaging dosimetry shows potential to address several of these limitations. Here, translation to conventional photon external beam radiotherapy was examined using a novel wide-area imaging and sensing technique. Methods: A modular scintillator array was combined with a dual-camera stereovision system for 3D localization and a clinical Cherenkov imaging system for optical scintillation detection. Water equivalent thickness, dose linearity, repetition rate stability, and angular dependence were characterized. Field edge detection was evaluated against radiochromic film using gamma analysis. System reproducibility was tested with consecutive deliveries simulating contralateral breast monitoring during whole-breast tangential radiotherapy. Results: The array showed high dose linearity across the tested range, minimal beam perturbation, and consistent response within 5% across all available LINAC repetition rates. Dose-normalized scintillation varied within 5% over clinically relevant gantry angles, and camera angle corrections compensated for non-Lambertian emission. Field edge detection agreed closely with film, with a 99.98% gamma pass rate (3%/3 mm). Inter-delivery reproducibility of +/-1 cGy demonstrated robust system performance. Conclusion: The conformable scintillator array imaging system provides spatially resolved, dynamic surface dosimetry with minimal workflow impact. Its ability to generate continuous dose maps across complex anatomical surfaces, while maintaining angular correction, addresses key limitations of current in vivo dosimetry and shows strong potential for clinical integration where wide-area surface dosimetry is required.
format Preprint
id arxiv_https___arxiv_org_abs_2511_20472
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Wide Area Surface Dosimetry with Conformal Scintillator Array for External Beam Radiotherapy
Vasyltsiv, Roman
Matous, Allison L.
Mulenga, Natasha
Clark, Megan A.
Pogue, Brian W.
Gladstone, David J.
Jarvis, Lesley A.
Bruza, Petr
Medical Physics
Background: In vivo dosimetry is essential for treatment verification in modern radiotherapy, but existing techniques are limited by spatiotemporal resolution and performance on non-uniform anatomy. Scintillation imaging dosimetry shows potential to address several of these limitations. Here, translation to conventional photon external beam radiotherapy was examined using a novel wide-area imaging and sensing technique. Methods: A modular scintillator array was combined with a dual-camera stereovision system for 3D localization and a clinical Cherenkov imaging system for optical scintillation detection. Water equivalent thickness, dose linearity, repetition rate stability, and angular dependence were characterized. Field edge detection was evaluated against radiochromic film using gamma analysis. System reproducibility was tested with consecutive deliveries simulating contralateral breast monitoring during whole-breast tangential radiotherapy. Results: The array showed high dose linearity across the tested range, minimal beam perturbation, and consistent response within 5% across all available LINAC repetition rates. Dose-normalized scintillation varied within 5% over clinically relevant gantry angles, and camera angle corrections compensated for non-Lambertian emission. Field edge detection agreed closely with film, with a 99.98% gamma pass rate (3%/3 mm). Inter-delivery reproducibility of +/-1 cGy demonstrated robust system performance. Conclusion: The conformable scintillator array imaging system provides spatially resolved, dynamic surface dosimetry with minimal workflow impact. Its ability to generate continuous dose maps across complex anatomical surfaces, while maintaining angular correction, addresses key limitations of current in vivo dosimetry and shows strong potential for clinical integration where wide-area surface dosimetry is required.
title Wide Area Surface Dosimetry with Conformal Scintillator Array for External Beam Radiotherapy
topic Medical Physics
url https://arxiv.org/abs/2511.20472