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SU‐F‐T‐78: Minimum Data Set of Measurements for TG 71 Based Electron Monitor‐Unit Calculations

机译:SU-F-T-78:基于TG 71的电子显示器单元计算的最小数据集

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Purpose: Building up a TG‐71 based electron monitor‐unit (MU) calculation protocol usually involves massive measurements. This work investigates a minimum data set of measurements and its calculation accuracy and measurement time. Methods: For 6, 9, 12, 16, and 20 MeV of our Varian Clinac‐Series linear accelerators, the complete measurements were performed at different depth using 5 square applicators (6, 10, 15, 20 and 25 cm) with different cutouts (2, 3, 4, 6, 10, 15 and 20 cm up to applicator size) for 5 different SSD's. For each energy, there were 8 PDD scans and 150 point measurements for applicator factors, cutout factors and effective SSDs that were then converted to air‐gap factors for SSD 99–110cm. The dependence of each dosimetric quantity on field size and SSD was examined to determine the minimum data set of measurements as a subset of the complete measurements. The “missing” data excluded in the minimum data set were approximated by linear or polynomial fitting functions based on the included data. The total measurement time and the calculated electron MU using the minimum and the complete data sets were compared. Results: The minimum data set includes 4 or 5 PDD's and 51 to 66 point measurements for each electron energy, and more PDD's and fewer point measurements are generally needed as energy increases. Using only 50% of complete measurement time, the minimum data set generates acceptable MU calculation results compared to those with the complete data set. The PDD difference is within 1 mm and the calculated MU difference is less than 1.5%. Conclusion: Data set measurement for TG‐71 electron MU calculations can be minimized based on the knowledge of how each dosimetric quantity depends on various setup parameters. The suggested minimum data set allows acceptable MU calculation accuracy and shortens measurement time by a few hours.
机译:目的:建立一个TG-71基于电子显示器单元(MU)计算协议通常涉及大量的测量。这项工作调查的测量和它的计算精度和测量时间的最小数据集。方法:对于图6,9,12,16,和我们的瓦里安Clinac系列的20兆电子伏线性加速器,完整的测量是在使用5次平方施用器(6,10,15,20和25厘米)用不同的切口不同的深度进行(2,3,4,6,10,15和20 cm至最高施加器大小)5个不同的SSD的。对于每个能量,有8个PDD扫描和150个测量为施胶因素,切口因子和有效的SSD然后已转换为气隙因素SSD 99-110cm。关于字段的大小和SSD每个剂量测定量的依赖性进行了检查以确定最小数据集的测量结果作为测量完整的子集。排除在该最小数据集合“丢失”的数据通过基于所包括的数据的线性或多项式拟合函数近似。总的测量时间,并使用最小和完整数据集电子MU所计算出的进行了比较。结果:最小数据集包括4个或5 PDD的和51〜66点测量用于每个电子能量,并且更PDD的和更少的点测量通常需要作为能量增加。仅&LT使用;的完整的测量时间的50%,与那些比较与完整的数据集的最小数据集合产生可接受的MU计算结果。的PDD差为1毫米的范围内,计算的MU差小于1.5%。结论:TG-71电子MU计算数据组的测量可以基于每个剂量测定量如何取决于各种设置参数的知识被最小化。建议的最小数据集允许可接受的MU计算精度,并通过几个小时缩短测量时间。

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