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Verification and source-position error analysis of film reconstruction techniques used in the brachytherapy planning systems.

机译:在近距离放射治疗计划系统中使用的胶片重建技术的验证和源位置误差分析。

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A method was presented that employs standard linac QA tools to verify the accuracy of film reconstruction algorithms used in the brachytherapy planning system. Verification of reconstruction techniques is important as suggested in the ESTRO booklet 8: "The institution should verify the full process of any reconstruction technique employed clinically." Error modeling was also performed to analyze seed-position errors. The "isocentric beam checker" device was used in this work. It has a two-dimensional array of steel balls embedded on its surface. The checker was placed on the simulator couch with its center ball coincident with the simulator isocenter, and one axis of its cross marks parallel to the axis of gantry rotation. The gantry of the simulator was rotated to make the checker behave like a three-dimensional array of balls. Three algorithms used in the ABACUS treatment planning system: orthogonal film, 2-films-with-variable-angle, and 3-films-with-variable-angle were tested. After exposing and digitizing the films, the position of each steel ball on the checker was reconstructed and compared to its true position, which can be accurately calculated. The results showed that the error is dependent on the object-isocenter distance, but not the magnification of the object. The averaged errors were less than 1 mm within the tolerance level defined by Roue et al. ["The EQUAL-ESTRO audit on geometric reconstruction techniques in brachytherapy," Radiother. Oncol. 78, 78-83 (2006)]. However, according to the error modeling, the theoretical error would be greater than 2 mm if the objects were located more than 20 cm away from the isocenter with a 0.5 degrees reading error of the gantry and collimator angles. Thus, in addition to carefully performing the QA of the gantry and collimator angle indicators, it is suggested that the patient, together with the applicators or seeds inside, should be placed close to the isocenter as much as possible. This method could be used to test the reconstruction techniques of any planning system, and the most suitable one can be chosen for clinical use.
机译:提出了一种使用标准直线加速器质量保证工具来验证近距离放射治疗计划系统中使用的胶片重建算法的准确性的方法。如ESTRO手册8所述,验证重建技术非常重要:“机构应验证临床上使用的任何重建技术的完整过程。”还进行了误差建模以分析种子位置误差。在这项工作中使用了“等心光束检查器”设备。它的表面嵌入了二维的钢球阵列。将检查器放置在模拟器卧榻上,其中心球与模拟器的等角点重合,并且其十字标记的一个轴平行于龙门架旋转轴。旋转模拟器的门架,使检查器的行为像三维球阵列。测试了ABACUS治疗计划系统中使用的三种算法:正交胶片,角度可变的2幅胶片和角度可变的3幅胶片。在对胶片进行曝光和数字化之后,重建每个钢球在检查器上的位置,并将其与可以精确计算的真实位置进行比较。结果表明,误差取决于物体的等距距离,而不是物体的放大率。在Roue等人定义的公差范围内,平均误差小于1 mm。 [“关于近距离放射治疗中几何重建技术的EQUAL-ESTRO审核,” Radiother。 Oncol。 78,78-83(2006)]。但是,根据误差模型,如果将物体放置在距等角点20厘米以上的位置,并且机架和准直仪角度的读取误差为0.5度,则理论误差将大于2 mm。因此,除了仔细执行龙门架和准直器角度指示器的质量保证外,建议将患者及其内部的涂抹器或种子一起放置在尽可能靠近等中心点的位置。该方法可用于测试任何计划系统的重建技术,并且可以选择最合适的方法用于临床。

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