Department of Radiation Oncology, Washington University School of Medicine, 4921 Parkview Place, St. Louis, MO, 63110, USA.
Department of Radiation Medicine and Applied Sciences, University of California San Diego, Moores Cancer Center, 3855 Health Sciences Dr., La Jolla, CA, 92093, USA.
Med Phys. 2017 Jul;44(7):3393-3406. doi: 10.1002/mp.12294. Epub 2017 May 26.
The purpose of this study was to develop a novel process for using on-board MV and kV Electronic Portal Imaging Devices (EPIDs) to perform linac acceptance testing (AT) for two reasons: (a) to standardize the assessment of new equipment performance, and (b) to reduce the time to clinical use while reducing physicist workload.
In this study, Varian TrueBeam linacs equipped with amorphous silicon-based EPID (aS1000) were used. The conventional set of AT tests and tolerances were used as a baseline guide. A novel methodology was developed or adopted from published literature to perform as many tests as possible using the MV and kV EPIDs. The developer mode on Varian TrueBeam linacs was used to automate the process. In the EPID-based approach, most of mechanical tests were conducted by acquiring images through a custom phantom and software tools were developed for quantitative analysis to extract different performance parameters. The embedded steel-spheres in a custom phantom provided both visual and radiographic guidance for beam geometry testing. For photon beams, open field EPID images were used to extract inline/crossline profiles to verify the beam energy, flatness and symmetry. EPID images through a double wedge phantom were used for evaluating electron beam properties via diagonal profile. Testing was augmented with a commercial automated application (Machine Performance Check) which was used to perform several geometric accuracy tests such as gantry, collimator rotations, and couch rotations/translations.
The developed process demonstrated that the tests, which required customer demonstration, were efficiently performed using EPIDs. The AT tests that were performed using EPIDs were fully automated using the developer mode on the Varian TrueBeam system, while some tests, such as the light field versus radiation field congruence, and collision interlock checks required user interaction.
On-board imagers are quite suitable for both geometric and dosimetric testing of linac system involved in AT. Electronic format of the acquired data lends itself to benchmarking, transparency, as well as longitudinal use of AT data. While the tests were performed on a specific model of a linear accelerator, the proposed approach can be extended to other linacs.
本研究旨在开发一种新的方法,利用机载兆伏和千伏电子射野影像装置(EPID)进行直线加速器验收测试(AT),原因有二:(a)使新设备性能评估标准化,(b)减少临床使用时间,同时减少物理学家的工作量。
在这项研究中,使用配备非晶硅基 EPID(aS1000)的瓦里安 TrueBeam 直线加速器。传统的一组 AT 测试和容差被用作基准指南。采用了一种新的方法学,或者从已发表的文献中采用了一种方法学,尽可能使用 MV 和 kV EPIDs 进行多项测试。瓦里安 TrueBeam 直线加速器的开发者模式用于自动化该过程。在基于 EPID 的方法中,大多数机械测试都是通过获取定制体模中的图像来进行的,并且开发了软件工具进行定量分析,以提取不同的性能参数。定制体模中的嵌入式钢球提供了光束几何测试的视觉和射线照相指导。对于光子束,使用开放野 EPID 图像提取直线/交叉线轮廓,以验证束能量、平坦度和对称性。通过双楔形体模的 EPID 图像用于通过对角轮廓评估电子束特性。测试通过商业自动化应用程序(Machine Performance Check)进行扩充,该应用程序用于执行几个几何精度测试,如旋转机架、准直器旋转以及治疗床旋转/平移。
所开发的过程表明,使用 EPIDs 可以有效地进行需要客户演示的测试。使用 EPIDs 进行的 AT 测试完全通过瓦里安 TrueBeam 系统的开发者模式自动化,而一些测试,如光场与辐射场一致性和碰撞互锁检查,需要用户交互。
机载成像仪非常适合于直线加速器系统的几何和剂量学 AT 测试。所获得数据的电子格式有利于基准测试、透明度以及 AT 数据的纵向使用。虽然测试是在特定型号的直线加速器上进行的,但所提出的方法可以扩展到其他直线加速器。