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Characteristics of gated treatment using an optical surface imaging and gating system on an Elekta linac

机译:用光学表面成像和elekta linac的光学表面成像和门控系统的门控处理特性

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Background Knowing the technical characteristics of gated radiotherapy equipment is crucial for ensuring precise and accurate treatment when using techniques such as Deep-Inspiration Breath-Hold and gating under free breathing. With one of the first installations of the novel surface imaging system Catalyst? (C-RAD AB, Sweden) in connection with an Elekta Synergy linear accelerator (Elekta AB, Sweden) via the Elekta Response Interface, characteristics like dose delivery accuracy and time delay were investigated prior to clinical implementation of gated treatments in our institution. Methods In this study a moving phantom was used to simulate respiratory motion which was registered by the Catalyst? system. The gating level was set manually. Within this gating window a trigger signal is automatically sent to the linac initiating treatment delivery. Dose measurements of gated linac treatment beams with different gating levels were recorded with a static 2D-Diode Array (MapCheck2, Sun Nuclear Co., USA) and compared to ungated reference measurements for different field sizes. In addition, the time delay of gated treatment beams was measured using radiographic film. Results The difference in dose delivery between gated and ungated treatment decreases with the size of the chosen gating level. For clinically relevant gating levels of about 30%, the differences in dose delivery accuracy remain below 1%. In comparison with other system configurations in literature, the beam-on time delay shows a large deviation of 851?ms?±?100?ms. Conclusions When performing gated treatment, especially for free-breathing gating, factors as time delay and dose delivery have to be evaluated regularly in terms of a quality assurance process. Once these parameters are known they can be accounted and compensated for, e.g. by adjusting the pre-selected gating level or the internal target volume margins and by using prediction algorithms for breathing curves. The usage of prediction algorithms becomes inevitable with the high beam-on time delay which is reported here.
机译:背景技术在使用自由呼吸下的深度灵感呼吸和门控等技术时,所知门控放射治疗设备的技术特性对于确保精确和准确的处理至关重要。与新型表面成像系统催化剂的第一装置之一? (C-RAD AB,SWEDEN)与ELEKTA协同式线性加速器(ELEKTA AB,瑞典)有关,通过ELEKTA响应界面,在临床实施在我们机构的门控处理之前,研究了剂量递送精度和时间延迟等特征。本研究中的方法用于模拟由催化剂登记的呼吸运动的运动模型?系统。门控等级手动设置。在该门控窗口中,触发信号被自动发送到LINAC启动处理递送。用静态2D二极管阵列(MapCheck2,Sun核心有限公司,USA)记录具有不同门控水平的凸起的LINAC处理梁的剂量测量,并与不同场尺寸的未获得的参考测量相比。另外,使用射线照相膜测量所设定的处理梁的时间延迟。结果所选择的门控水平的门控和未凝固处理之间的剂量递送差异降低。对于临床相关的门控水平约为30%,剂量递送精度的差异仍然低于1%。与文献中的其他系统配置相比,光束时间延迟显示出851的大偏差?MS?±100?MS。结论在进行门控处理时,特别是对于自由呼吸门控,因子延迟和剂量递送的因素必须定期评估质量保证过程。一旦知道这些参数,它们可以被解释和补偿,例如,通过调整预选的门控水平或内部目标体积边缘并使用预测算法来呼吸曲线。预测算法的使用与这里报道的高光束时间延迟变得不可避免。

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