首页> 外文期刊>Medical Physics >On the output factor measurements of the CyberKnife iris collimator small fields: Experimental determination of the k Qclin, Qmsr fclin, f msr correction factors for microchamber and diode detectors
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On the output factor measurements of the CyberKnife iris collimator small fields: Experimental determination of the k Qclin, Qmsr fclin, f msr correction factors for microchamber and diode detectors

机译:关于Cyber​​Knife虹膜准直器小场的输出因子测量:微腔和二极管检测器的k Qclin,Qmsr fclin,f msr校正因子的实验确定

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Purpose: To measure the output factors (OFs) of the small fields formed by the variable aperture collimator system (iris) of a CyberKnife (CK) robotic radiosurgery system, and determine the k Qclin, Qmsr fclin, f msr correction factors for a microchamber and four diode detectors. Methods: OF measurements were performed using a PTW PinPoint 31014 microchamber, four diode detectors (PTW-60017, -60012, -60008, and the SunNuclear EDGE detector), TLD-100 microcubes, alanine dosimeters, EBT films, and polymer gels for the 5 mm, 7.5 mm, 10 mm, 12.5 mm, and 15 mm iris collimators at 650 mm, 800 mm, and 1000 mm source to detector distance (SDD). The alanine OF measurements were corrected for volume averaging effects using the 3D dose distributions registered in polymer gel dosimeters. k Qclin, Qmsr fclin, f msr correction factors for the PinPoint microchamber and the diode dosimeters were calculated through comparison against corresponding polymer gel, EBT, alanine, and TLD results. Results: Experimental OF results are presented for the array of dosimetric systems used. The PinPoint microchamber was found to underestimate small field OFs, and a k Qclin, Qmsr fclin, f msr correction factor ranging from 1.127 ± 0.022 (for the 5 mm iris collimator) to 1.004 ± 0.010 (for the 15 mm iris collimator) was determined at the reference SDD of 800 mm. The PinPoint k Qclin, Qmsr fclin, f msr correction factor was also found to increase with decreasing SDD; k Qclin, Qmsr fclin, f msr values equal to 1.220 ± 0.028 and 1.077 ± 0.016 were obtained for the 5 mm iris collimator at 650 mm and 1000 mm SDD, respectively. On the contrary, diode detectors were found to overestimate small field OFs and a correction factor equal to 0.973 ± 0.006, 0.954 ± 0.006, 0.937 ± 0.007, and 0.964 ± 0.006 was measured for the PTW-60017, -60012, -60008 and the EDGE diode detectors, respectively, for the 5 mm iris collimator at 800 mm SDD. The corresponding correction factors for the 15 mm iris collimator were found equal to 0.997 ± 0.010, 0.994 ± 0.009, 0.988 ± 0.010, and 0.986 ± 0.010, respectively. No correlation of the diode k Qclin, Qmsr fclin, f msr correction factors with SDD was observed. Conclusions: This work demonstrates an experimental procedure for the determination of the k Qclin, Qmsr fclin, f msr correction factors required to obtain small field OF results of increased accuracy.
机译:目的:测量由射波刀(CK)机器人放射外科手术系统的可变孔径准直仪系统(iris)形成的小视野的输出因子(OFs),并确定微腔的k Qclin,Qmsr fclin和f msr校正因子和四个二极管探测器。方法:使用PTW PinPoint 31014微腔室,四个二极管检测器(PTW-60017,-60012,-60008和SunNuclear EDGE检测器),TLD-100微立方体,丙氨酸剂量计,EBT膜和聚​​合物凝胶进行OF测量。 5mm,7.5mm,10mm,12.5mm和15mm虹膜准直仪在650mm,800mm和1000mm的源到检测器距离(SDD)处。使用聚合物凝胶剂量计中记录的3D剂量分布,对丙氨酸OF测量值的体积平均效应进行了校正。通过与相应的聚合物凝胶,EBT,丙氨酸和TLD结果进行比较,计算出PinPoint微腔和二极管剂量计的k Qclin,Qmsr fclin,f msr校正因子。结果:给出了所使用的剂量系统阵列的实验性OF结果。发现PinPoint微腔室低估了小场OF,确定的ak Qclin,Qmsr fclin,f msr校正因子范围为1.127±0.022(对于5 mm虹膜准直仪)至1.004±0.010(对于15 mm虹膜准直仪)参考SDD为800毫米。还发现PinPoint k Qclin,Qmsr fclin,f msr校正因子随着SDD的减小而增加;对于5 mm虹膜准直仪,分别在650 mm和1000 mm SDD下获得的k Qclin,Qmsr fclin,f msr值分别等于1.220±0.028和1.077±0.016。相反,发现PTW-60017,-60012,-60008和PTW-60017的二极管检测器高估了小场OF,校正系数等于0.973±0.006、0.954±0.006、0.937±0.007和0.964±0.006。 EDGE二极管检测器分别用于5 mm虹膜准直仪,SDD为800 mm。发现15毫米虹膜准直器的相应校正系数分别等于0.997±0.010、0.994±0.009、0.988±0.010和0.986±0.010。没有观察到二极管k Qclin,Qmsr fclin,f msr校正因子与SDD相关。结论:这项工作证明了确定k Qclin,Qmsr fclin,f msr校正因子的实验程序,这些校正因子是获得提高精度的小视场结果所必需的。

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