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Investigations of interference between electromagnetic transponders and wireless MOSFET dosimeters: A phantom study

机译:电磁应答器与无线MOSFET剂量计之间的干扰研究:幻像研究

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摘要

>Purpose: To evaluate both the Calypso Systems’ (Calypso Medical Technologies, Inc., Seattle, WA) localization accuracy in the presence of wireless metal–oxide–semiconductor field-effect transistor (MOSFET) dosimeters of dose verification system (DVS, Sicel Technologies, Inc., Morrisville, NC) and the dosimeters’ reading accuracy in the presence of wireless electromagnetic transponders inside a phantom.>Methods: A custom-made, solid-water phantom was fabricated with space for transponders and dosimeters. Two inserts were machined with positioning grooves precisely matching the dimensions of the transponders and dosimeters and were arranged in orthogonal and parallel orientations, respectively. To test the transponder localization accuracy with∕without presence of dosimeters (hypothesis 1), multivariate analyses were performed on transponder-derived localization data with and without dosimeters at each preset distance to detect statistically significant localization differences between the control and test sets. To test dosimeter dose-reading accuracy with∕without presence of transponders (hypothesis 2), an approach of alternating the transponder presence in seven identical fraction dose (100 cGy) deliveries and measurements was implemented. Two-way analysis of variance was performed to examine statistically significant dose-reading differences between the two groups and the different fractions. A relative-dose analysis method was also used to evaluate transponder impact on dose-reading accuracy after dose-fading effect was removed by a second-order polynomial fit.>Results: Multivariate analysis indicated that hypothesis 1 was false; there was a statistically significant difference between the localization data from the control and test sets. However, the upper and lower bounds of the 95% confidence intervals of the localized positional differences between the control and test sets were less than 0.1 mm, which was significantly smaller than the minimum clinical localization resolution of 0.5 mm. For hypothesis 2, analysis of variance indicated that there was no statistically significant difference between the dosimeter readings with and without the presence of transponders. Both orthogonal and parallel configurations had difference of polynomial-fit dose to measured dose values within 1.75%.>Conclusions: The phantom study indicated that the Calypso System’s localization accuracy was not affected clinically due to the presence of DVS wireless MOSFET dosimeters and the dosimeter-measured doses were not affected by the presence of transponders. Thus, the same patients could be implanted with both transponders and dosimeters to benefit from improved accuracy of radiotherapy treatments offered by conjunctional use of the two systems.
机译:>目的:在存在无线金属氧化物半导体场效应晶体管(MOSFET)剂量计的情况下,评估Calypso Systems(Calypso Medical Technologies,Inc.,西雅图,华盛顿)的定位精度验证系统(DVS,Sicel Technologies,Inc。,莫里斯维尔,北卡罗来纳州)和人体模型中存在无线电磁应答器的情况下剂量计的读取精度。>方法::定制的固态水体模型制造用于应答器和剂量计的空间。对两个插入件进行加工,并在定位槽上精确匹配应答器和剂量计的尺寸,并分别以正交和平行方向进行排列。为了在不存在剂量计的情况下测试应答器的定位精度(假设1),对在每个预设距离处有无剂量计的应答器衍生的定位数据进行多变量分析,以检测控制集和测试集之间的统计学差异。为了在不存在应答器的情况下测试剂量计剂量读数的准确性(假设2),实施了一种以七个相同的分数剂量(100 cGy)输送和测量来交替应答器存在的方法。进行了方差的双向分析,以检查两组之间以及不同分数之间的统计学上显着的剂量读数差异。通过二阶多项式拟合消除剂量衰减效应后,还使用相对剂量分析方法评估应答器对剂量读取准确性的影响。>结果:多变量分析表明假设1为假;对照和测试集的定位数据之间在统计上有显着差异。但是,对照组和测试组之间局部位置差异的95%置信区间的上限和下限小于0.1 mm,这明显小于最小临床定位分辨率0.5 mm。对于假设2,方差分析表明在有和没有应答器的情况下,剂量计读数之间没有统计学上的显着差异。正交和平行配置的多项式拟合剂量与测得剂量值之间的差异均在1.75%之内。 MOSFET剂量计和剂量计测量的剂量不受应答器的影响。因此,可以将相同的患者植入应答器和剂量计,以受益于两个系统的联合使用所提供的放射治疗精度的提高。

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