Yang Bin, Chiu Tin Lok, Law Wai Kong, Geng Hui, Lam Wai Wang, Leung Tat Ming, Yiu Lok Hang, Cheung Kin Yin, Yu Siu Ki
Medical Physics and Research Department, Hong Kong Sanatorium & Hospital, 2 Village Road, Happy Valley, Hong Kong, China.
Biomedical Engineering Department, Hong Kong Sanatorium & Hospital, 2 Village Road, Happy Valley, Hong Kong, China.
Radiol Phys Technol. 2019 Mar;12(1):86-95. doi: 10.1007/s12194-018-00495-2. Epub 2019 Jan 2.
The aim of the current study was to evaluate the tracking error of the Synchrony Respiratory Tracking system by conducting beam-by-beam analyses to determine the variation in the tracking beams measured during target motion. A moving phantom of in-house design coupled with a two-dimensional (2D) detector array was used to simulate respiratory motion in the superoinferior (SI) and anteroposterior (AP) direction. A styrofoam block with four implanted fiducial markers was placed on top of the detector to enable the fiducial-based respiratory tracking. Measurements were performed with the phantom under either stationary mode or sinusoidal motion of 6-s cycle and 15/20-mm amplitude at SI and AP direction. The measurement data were saved as movie files that were used to calculate the center shift of the beam with 100-ms sampling time. The tracking accuracy of the system was defined as the targeting error, which could be tracked with probability of > 95% (Ep95). The mean ± standard deviation of Ep95 was 0.28 ± 0.08 mm under stationary condition; 0.66 ± 0.23 mm (range: 0.28-1.22 mm) under sinusoidal respiratory motion. The maximum drift of the beam center for all beam paths was 2.7 mm. The tracking accuracy of CyberKnife Synchrony system was successfully evaluated using a moving phantom and 2D detector array; the maximum tracking error was < 1.5 mm for sinusoidal motion of amplitude ≤ 20 mm.
本研究的目的是通过逐束分析来评估同步呼吸追踪系统的追踪误差,以确定在目标运动期间测量的追踪束的变化。使用自行设计的移动体模与二维(2D)探测器阵列相结合,来模拟在头脚(SI)和前后(AP)方向上的呼吸运动。将带有四个植入基准标记的聚苯乙烯泡沫塑料块放置在探测器顶部,以实现基于基准的呼吸追踪。在体模处于静止模式或在SI和AP方向上以6秒周期和15/20毫米幅度的正弦运动下进行测量。测量数据保存为电影文件,用于计算采样时间为100毫秒时束的中心偏移。系统的追踪精度定义为靶向误差,其追踪概率>95%(Ep95)。在静止条件下,Ep95的平均值±标准差为0.28±0.08毫米;在正弦呼吸运动下为0.66±0.23毫米(范围:0.28 - 1.22毫米)。所有束路径的束中心最大漂移为2.7毫米。使用移动体模和2D探测器阵列成功评估了射波刀同步系统的追踪精度;对于幅度≤20毫米的正弦运动,最大追踪误差<1.5毫米。