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Uncertainty Analysis in MRI-based Polymer Gel Dosimetry

机译:基于MRI的聚合物凝胶剂量测定法的不确定度分析

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v:* {behavior:url(#default#VML);} o:* {behavior:url(#default#VML);} w:* {behavior:url(#default#VML);} .shape {behavior:url(#default#VML);} Background: Polymer gel dosimeters combined with magnetic resonance imaging (MRI) can be used for dose verification of advanced radiation therapy techniques. However, the uncertainty of dose map measured by gel dosimeter should be known. The purpose of this study is to investigate the uncertainty related to calibration curve and MRI protocol for MAGIC (Methacrylic and Ascorbic acid in Gelatin Initiated by Copper) gel and finally ways of optimization MRI protocol is introduced. Materials and Methods: MAGIC gel was prepared by the Fong et al. instruction. The gels were poured into calibration vials and irradiated by 18 MV photons. 1.5 Tesla MRI was used for reading out information. Finally, uncertainty of measured dose was calculated. Results: Results show that for MAGIC polymer gel dosimeter, at low doses, the estimated uncertainty is high (a?? 18.96% for 1 Gy) but it reduces to approximately 4.17% for 10 Gy. Also, with increasing dose, the uncertainty for the measured dose decreases non-linearly. For low doses, the most significant uncertainties are ??R0 (uncertainty of intercept) and ??a (uncertainty of slope) for high doses. MRI protocol parameters influence signal-to-noise ratio (SNR). Conclusion: The most important source of uncertainty is uncertainty of R2. Hence, MRI protocol and parameters therein should be optimized. At low doses, the estimated uncertainty is high and reduces by increasing dose. It is suggested that in relative dosimetry, gels are irradiated by high doses in linear range of given gel dosimeter and then scaled down to the desired dose range. Normal 0 false false false EN-US X-NONE AR-SA /* Style Definitions */ table.MsoNormalTable {mso-style-name:"Table Normal"; mso-tstyle-rowband-size:0; mso-tstyle-colband-size:0; mso-style-noshow:yes; mso-style-priority:99; mso-style-parent:""; mso-padding-alt:0cm 5.4pt 0cm 5.4pt; mso-para-margin-top:0cm; mso-para-margin-right:0cm; mso-para-margin-bottom:8.0pt; mso-para-margin-left:0cm; line-height:107%; mso-pagination:widow-orphan; font-size:11.0pt; font-family:"Calibri","sans-serif"; mso-ascii-font-family:Calibri; mso-ascii-theme-font:minor-latin; mso-hansi-font-family:Calibri; mso-hansi-theme-font:minor-latin;}.
机译:v :* {behavior:url(#default#VML);} o :* {behavior:url(#default#VML);} w :* {behavior:url(#default#VML);} .shape {behavior:url(#default#VML);}背景:聚合物凝胶剂量计结合磁共振成像(MRI)可用于先进放射治疗技术的剂量验证。但是,应该知道通过凝胶剂量计测量的剂量图的不确定性。这项研究的目的是研究与MAGIC(铜引发的明胶中的甲基丙烯酸和抗坏血酸)的校准曲线和MRI方案有关的不确定性,最后介绍了优化MRI方案的方法。材料和方法:MAGIC凝胶由Fong等人制备。指令。将凝胶倒入校准瓶中,并用18 MV光子照射。 1.5 Tesla MRI用于读取信息。最后,计算剂量的不确定度。结果:结果表明,对于低剂量的MAGIC聚合物凝胶剂量计,估计的不确定性很高(1 Gy的不确定度为18.96%),而10 Gy的不确定度降低至约4.17%。同样,随着剂量的增加,所测量剂量的不确定性会非线性降低。对于小剂量,最大的不确定度是ΔR0(截距的不确定性)和Δα(斜率的不确定性)。 MRI协议参数会影响信噪比(SNR)。结论:不确定性最重要的来源是R2的不确定性。因此,应该优化MRI协议和其中的参数。在低剂量下,估计的不确定性很高,并且随着剂量的增加而降低。建议在相对剂量法中,在给定的凝胶剂量计的线性范围内以高剂量照射凝胶,然后按比例缩小至所需剂量范围。正常0否否否EN-US X-NONE AR-SA / *样式定义* / table.MsoNormalTable {mso-style-name:“ Table Normal”; mso-tstyle-rowband-size:0; mso-tstyle-colband-size:0; mso-style-noshow:是; mso-style-priority:99; mso-style-parent:“”; mso-padding-alt:0cm 5.4pt 0cm 5.4pt; mso-para-margin-top:0cm; mso-para-margin-right:0cm; mso-para-margin-bottom:8.0pt; mso-para-margin-left:0cm;线高:107%; mso分页:寡妇孤儿;字体大小:11.0pt;字体家族:“ Calibri”,“ sans-serif”; mso-ascii-font-family:Calibri; mso-ascii-theme-font:minor-latin; mso-hansi-font-family:Calibri; mso-hansi-theme-font:minor-latin;}。

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