Open LEARN: Open access linear accelerator education and augmented reality Navigator

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-09-13 DOI:10.1016/j.ejmp.2024.104515
Parminder S. Basran , Sung Ho Synn , Gregory A. Marzano , Hyun Maeng , Farzin Lotfi-Jam
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Abstract

Purpose

To create an open-access Linear Accelerator Education and Augmented Reality Navigator (Open LEARN) via 3D printable objects and interactive augmented reality assets.

Methods

This study describes an augmented reality linear accelerator (linac) model accessible through a QR code and a smartphone to address the challenges of medical physics and radiation oncology trainees in low-to-middle-income countries.

Results

Major components of a generic linear accelerator are modeled as individual objects. These objects can be 3D printed for hands-on learning and used as interactive 3D assets within the augmented reality app. In the AR app, descriptions are displayed to navigate the components spatially and textually. Items modeled include the treatment couch, klystron, circulator, RF waveguides, electron gun, waveguide, beam steering assemblies, target, collimators, multi-leaf collimators, and imaging systems. The linear accelerator is rendered at nearly 100% of its actual size, allowing users to change magnification and view objects from different angles.

Conclusions

The augmented reality linear accelerators and 3D-printed objects make these complex machines easily accessible with smartphones and 3D-printing technologies, facilitating education and training through physical and virtual interaction.

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开放 LEARN:开放式直线加速器教育和增强现实导航仪
目的通过三维打印对象和交互式增强现实资产,创建一个可开放访问的线性加速器教育和增强现实导航器(Open LEARN)。方法本研究描述了一个可通过二维码和智能手机访问的增强现实线性加速器(linac)模型,以解决中低收入国家医学物理和放射肿瘤学学员面临的挑战。这些物体可通过三维打印进行实践学习,并在增强现实应用程序中用作交互式三维资产。在增强现实应用程序中,将显示相关说明,以便在空间和文字上对组件进行导航。建模项目包括治疗床、速调管、循环器、射频波导、电子枪、波导、光束转向组件、靶、准直器、多叶准直器和成像系统。增强现实直线加速器和三维打印对象使这些复杂的机器可以通过智能手机和三维打印技术轻松访问,通过物理和虚拟互动促进教育和培训。
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CiteScore
7.20
自引率
4.30%
发文量
567
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