Department of Radiation Oncology, Cancer Institute (Hospital), Chinese Academy of Medical Sciences, Beijing 100021, China.
Med Phys. 2013 Oct;40(10):101712. doi: 10.1118/1.4820439.
Volumetric-modulated arc therapy (VMAT) is delivered through synchronized variation of gantry angle, dose rate, and multileaf collimator (MLC) leaf positions. The delivery dynamic nature challenges the parameter setting accuracy of linac control system. The purpose of this study was to develop a novel method for routine quality assurance (QA) of VMAT linacs.
ArcCheck is a detector array with diodes distributing in spiral pattern on cylindrical surface. Utilizing its features, a QA plan was designed to strictly test all varying parameters during VMAT delivery on an Elekta Synergy linac. In this plan, there are 24 control points. The gantry rotates clockwise from 181° to 179°. The dose rate, gantry speed, and MLC positions cover their ranges commonly used in clinic. The two borders of MLC-shaped field seat over two columns of diodes of ArcCheck when the gantry rotates to the angle specified by each control point. The ratio of dose rate between each of these diodes and the diode closest to the field center is a certain value and sensitive to the MLC positioning error of the leaf crossing the diode. Consequently, the positioning error can be determined by the ratio with the help of a relationship curve. The time when the gantry reaches the angle specified by each control point can be acquired from the virtual inclinometer that is a feature of ArcCheck. The gantry speed between two consecutive control points is then calculated. The aforementioned dose rate is calculated from an acm file that is generated during ArcCheck measurements. This file stores the data measured by each detector in 50 ms updates with each update in a separate row. A computer program was written in MATLAB language to process the data. The program output included MLC positioning errors and the dose rate at each control point as well as the gantry speed between control points. To evaluate this method, this plan was delivered for four consecutive weeks. The actual dose rate and gantry speed were compared with the QA plan specified. Additionally, leaf positioning errors were intentionally introduced to investigate the sensitivity of this method.
The relationship curves were established for detecting MLC positioning errors during VMAT delivery. For four consecutive weeks measured, 98.4%, 94.9%, 89.2%, and 91.0% of the leaf positioning errors were within ± 0.5 mm, respectively. For the intentionally introduced leaf positioning systematic errors of -0.5 and +1 mm, the detected leaf positioning errors of 20 Y1 leaf were -0.48 ± 0.14 and 1.02 ± 0.26 mm, respectively. The actual gantry speed and dose rate closely followed the values specified in the VMAT QA plan.
This method can assess the accuracy of MLC positions and the dose rate at each control point as well as the gantry speed between control points at the same time. It is efficient and suitable for routine quality assurance of VMAT.
容积调强弧形治疗(VMAT)通过同步变化机架角度、剂量率和多叶准直器(MLC)叶片位置来实现。其传输的动态特性对直线加速器控制系统的参数设置精度提出了挑战。本研究旨在开发一种用于常规 VMAT 直线加速器质量保证(QA)的新方法。
ArcCheck 是一种探测器阵列,其二极管分布在圆柱表面的螺旋形图案上。利用其特点,为 Elekta Synergy 直线加速器设计了一种 QA 计划,严格测试 VMAT 传输过程中的所有变化参数。在该计划中,有 24 个控制点。机架从 181°顺时针旋转到 179°。剂量率、机架速度和 MLC 位置覆盖了临床常用的范围。当机架旋转到每个控制点指定的角度时,MLC 形状场的两个边缘覆盖了 ArcCheck 上两列二极管。每个二极管与最接近场中心的二极管之间的剂量率比值是一个固定值,并且对叶片穿过二极管的 MLC 定位误差敏感。因此,借助关系曲线可以确定定位误差。可以从 ArcCheck 的虚拟倾斜计获取每个控制点指定的角度到达时间。然后计算两个连续控制点之间的机架速度。上述剂量率是从在 ArcCheck 测量期间生成的 acm 文件中计算得出的。该文件以 50ms 的更新速度存储每个探测器测量的数据,每次更新都在单独的行中。用 MATLAB 语言编写了一个计算机程序来处理数据。程序输出包括每个控制点的 MLC 定位误差和剂量率以及控制点之间的机架速度。为了评估该方法,连续四周进行了该计划的传输。实际剂量率和机架速度与 QA 计划规定进行了比较。此外,还故意引入叶片定位误差,以研究该方法的灵敏度。
建立了用于检测 VMAT 传输过程中 MLC 定位误差的关系曲线。对于连续四周的测量,98.4%、94.9%、89.2%和 91.0%的叶片定位误差分别在±0.5mm 以内。对于故意引入的 20Y1 叶片的叶片定位系统误差-0.5 和+1mm,检测到的叶片定位误差分别为-0.48±0.14 和 1.02±0.26mm。实际的机架速度和剂量率紧密遵循 VMAT QA 计划中规定的值。
该方法可以同时评估 MLC 位置的准确性、每个控制点的剂量率以及控制点之间的机架速度。它高效且适用于 VMAT 的常规质量保证。