Department of Medical Physics and Clinical Engineering, St Vincent's University Hospital, Dublin, Ireland; UCD Centre for Physics in Health and Medicine, School of Physics, University College Dublin, Dublin 4, Ireland.
The SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, CA 94025, United States.
Phys Med. 2024 Sep;125:104506. doi: 10.1016/j.ejmp.2024.104506. Epub 2024 Aug 27.
Accurate simulation of organ doses in C-arm CBCT is critical for estimating personalised patient dosimetry. However, system complexities such as automatic exposure control (AEC) and the incorporation of DICOM images into simulations are challenging. The aim of this study was to develop a model for mimicking the operation of an AEC system, which maintains a constant dose to the detector through mA modulation in order to facilitate more accurate MC dosimetry models for C-arm CBCT.
A Siemens Artis Q Interventional Radiology (IR) C-arm system [Siemens, Erlangen, Germany] was modelled in TOol for PArticle Simulation (TOPAS) by incorporating system specifications such as rotational speed, number of projections and exam protocol parameters. A novel threshold scorer, AECScorer, was developed to model the AEC functionality. MC simulations were performed using a variety of imaged volumes including a CTDI phantom, an anthropomorphic phantom and a patient DICOM dataset.
The AECScorer extension provides a framework for a conditional scoring function within TOPAS which allows for the simulation of an AEC system. The AECScorer successfully equalises the dose to the detector for simple phantoms and DICOM imaging datasets by adjusting the number of histories simulated at each CBCT projection. This AECSCorer tool is applicable to other medical imaging systems requiring AEC simulation.
We demonstrate a novel threshold scorer in TOPAS for a C-arm CBCT setup. The presented AECScorer is the first step towards providing a system-, patient- and protocol-specific dose estimates from CBCT dosimetry applications.
准确模拟 C 臂 CBCT 中的器官剂量对于估计个性化患者剂量至关重要。然而,自动曝光控制(AEC)等系统复杂性以及将 DICOM 图像纳入模拟中是具有挑战性的。本研究的目的是开发一种模拟 AEC 系统操作的模型,该模型通过 mA 调制来维持对探测器的恒定剂量,从而为 C 臂 CBCT 提供更准确的 MC 剂量学模型。
通过纳入系统规格(例如旋转速度、投影数量和检查协议参数),在 TOol for PArticle Simulation(TOPAS)中对西门子 Artis Q 介入放射学(IR)C 臂系统[西门子,德国埃朗根]进行建模。开发了一种新的阈值评分器 AECScorer,用于模拟 AEC 功能。使用各种成像体积(包括 CTDI 体模、人体模型和患者 DICOM 数据集)进行 MC 模拟。
AECScorer 扩展提供了 TOPAS 内条件评分功能的框架,允许模拟 AEC 系统。AECScorer 通过调整每个 CBCT 投影模拟的历史数量,成功地为简单的体模和 DICOM 成像数据集平衡了探测器的剂量。该 AECSCorer 工具适用于需要 AEC 模拟的其他医学成像系统。
我们在 TOPAS 中为 C 臂 CBCT 设备展示了一种新的阈值评分器。所提出的 AECScorer 是从 CBCT 剂量学应用程序提供系统、患者和协议特异性剂量估计的第一步。