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Dose–response linearization in radiochromic film dosimetry based on multichannel normalized pixel value with an integrated spectral correction for scanner response variations

机译:基于多通道归一化像素值的扫描仪响应变化的集成光谱校正的多通道归一化像素值的放射致铬膜剂量测量法的剂量响应线性化

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Purpose To introduce a model that reproducibly linearizes the response from radiochromic film (RCF) dosimetry systems at extended dose range. To introduce a correction method, generated from the same scanned images, which corrects for scanner temporal response variation and scanner bed inhomogeneity. Methods Six calibration curves were established for different lot numbers of EBT3 GAFCHROMIC? film model based on four EPSON scanners [10000XL (2 units), 11000XL, 12000XL] at three different centers. These films were calibrated in terms of absorbed dose to water based on TG51 protocol or TRS398 with dose ranges up to 40?Gy. The film response was defined in terms of a proposed normalized pixel value ( n P V RGB ) as a summation of first‐order equations based on information from red, green, and blue channels. The fitting parameters of these equations are chosen in a way that makes the film response equal to dose at the time of calibration. An integrated set of correction factors (one per color channel) was also introduced. These factors account for the spatial and temporal changes in scanning states during calibration and measurements. The combination of n P V RGB and this “fingerprint” correction formed the basis of this new protocol and it was tested against net optical density ( n e t O D X = R , G , B ) single‐channel dosimetry in terms of accuracy, precision, scanner response variability, scanner bed inhomogeneity, noise, and long‐term stability. Results Incorporating multichannel features (RGB) into the normalized pixel value produced linear response to absorbed dose (slope of 1) in all six RCF dosimetry systems considered in this study. The “fingerprint” correction factors of each of these six systems displayed unique patterns at the time of calibration. The application of n P V RGB to all of these six systems could achieve a level of accuracy of?±?2.0% in the dose range of interest within modeled uncertainty level of 2.0%–3.0% depending on the dose level. Consistent positioning of control and measurement film pieces and integrating the multichannel correction into the response function formalism mitigated possible scanner response variations of as much as?±?10% at lower doses and scanner bed inhomogeneity of?±?8% to the established level of uncertainty at the time of calibration. The system was also able to maintain the same level of accuracy after 3 and 6?months post calibration. Conclusions Combining response linearity with the integrated correction for scanner response variation lead to a sustainable and practical RCF dosimetry system that mitigated systematic response shifts and it has the potential to reduce errors in reporting relative information from the film response.
机译:目的以引入可重复地从线性化变色薄膜(RCF)剂量测定系统在延长的剂量范围内的响应的模型。介绍的校正方法,从相同的扫描图像,其中用于校正扫描器的时间响应变化和扫描仪床的不均匀性产生的。方法6校准曲线,建立了EBT3 GAFCHROMIC的不同批号?膜模型基于四个EPSON扫描仪[10000XL(2个单位),11000XL,12000XL]在三个不同的中心。这些膜在基于TG51协议或TRS398随剂量水吸收剂量进行了校准范围高达40?戈瑞。该膜响应于所提议的归一化的像素值(N p个V RGB)基于由红,绿,蓝信道的信息的一阶方程的总和来定义。这些方程的拟合参数进行选择的方式,使得该膜响应等于在校准的时间剂量。还介绍的校正因子(每个颜色通道的一个)的集成组。这些因素考虑在校准和测量过程中扫描的状态的空间和时间的变化。 ÑPV RGB和这个“指纹”校正的组合形成这个新的协议的基础,它是针对净光密度(净ODX = R,G,B)的准确度,精度,扫描仪响应方面单通道剂量测定试验变性,扫描仪床的不均匀性,噪音和长期稳定性。结果合并多通道特征(RGB)转换成归一化的像素值产生的,以在这个研究中考虑所有六个RCF剂量测定系统吸收剂量(第1斜率)线性响应。每个这些六个系统的“指纹”的校正因子在校准时显示独特的图案。 N p个V RGB的所有这六个系统的应用可以实现的?±2.0%的精度在取决于剂量水平的2.0%-3.0%的不确定性模型化水平内的感兴趣的剂量范围内的水平。控制和测量膜片和集成多信道校正到响应函数形式主义的一致定位在较低剂量和?±?8%扫描器床不均匀性的既定水平减轻的多达?±?10%可能的扫描器响应变化不确定性在校准时间。该系统还能够3和6个半月后校准后保持精度相同水平。结论结合响应线性与扫描仪响应变化导致综合修正可持续的,实用的RCF量测系统是缓解系统反应移位,并有可能减少在报告从影片响应相关信息出现错误的可能性。

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