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A novel‐integrated quality assurance phantom for radiographic and nonradiographic radiotherapy localization and positioning systems

机译:用于射线照相和非显影放射治疗定位和定位系统的新型综合质量保证幻像

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Purpose Various localization and positioning systems utilizing radiographic or nonradiographic methods have been developed to improve the accuracy of radiation treatment. Each quality assurance ( QA ) procedure requires its own phantom and is independent from each other, so the deviation between each system is unavailable. The purpose of this work is to develop and evaluate a single‐integrated QA phantom for different localization and positioning systems. Methods The integrated phantom was designed in three‐dimensional (3D) CAD software and 3D printed. The phantom was designed with laser alignment marks, a raised letter “S” on the anterior surface for optical surface monitoring system registration, a core for radiofrequency ( RF ) tracking system alignment, eight internal fiducials for image alignment, and an isocentric bearing for Winston–Lutz test. Tilt legs and rotational stage were designed for rotational verification of optical surface mapping system and RF tracking system, respectively. The phantom was scanned using a CT scanner and a QA plan was created. This prototype phantom was evaluated against established QA techniques. Results The QA result between the proposed procedure and established QA technique are 1.12 ± 0.31 and 1.14 ± 0.31 mm, respectively, for RF tracking system and 0.18 ± 0.06 and 0.18 ± 0.05 mm for Winston–Lutz test. There is no significant difference for the QA results between the established QA and proposed procedure ( P 0.05, t test). The accuracy of rotational verification for surface mapping system and RF tracking system are less than 0.5 and 1° compared the predefined value. The isocenter deviation of each location system is around l mm. Conclusion We have designed and evaluated a novel‐integrated phantom for radiographic and nonradiographic localization and positioning systems for radiotherapy. With this phantom, we will reduce the variation in measurements and simplify the QA procedures.
机译:目的,已经开发了利用射线照相或非显影方法的各种定位和定位系统来提高辐射处理的准确性。每个质量保证(QA)程序需要其自己的幻像,并且彼此独立,因此每个系统之间的偏差不可用。这项工作的目的是为不同的本地化和定位系统开发和评估单一集成的QA幻像。方法采用三维(3D)CAD软件和3D打印的集成幻影。幻影设计有激光对准标记,在前表面上的升高字母“S”进行光学表面监测系统登记,是射频(RF)跟踪系统对准的核心,八个内部基准,用于图像对齐,以及Winston的Isocentric轴承-lutz测试。倾斜腿和旋转级被设计用于光学表面映射系统和RF跟踪系统的旋转验证。使用CT扫描仪扫描幻像,并创建了QA计划。评估该原型幻像针对已建立的QA技术进行评估。结果QA导致所提出的程序和建立的QA技术分别为1.12±0.31和1.14±0.311毫米,对于RF跟踪系统,对于Winston-Lutz测试的0.18±0.06和0.18±0.05 mm。 QA在已建立的QA和提出的程序之间没有显着差异(P> 0.05,T测试)。表面映射系统和RF跟踪系统的旋转验证的准确性小于0.5和1°比较预定义值。每个位置系统的Isocenter偏差在L mm周围。结论我们设计并评估了用于放射疗法的射线照相和非显影定位和定位系统的新型集成模体。通过这种幻影,我们将减少测量的变化并简化QA程序。

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