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首页> 外文期刊>Radiation oncology >A simple method for determining dosimetric leaf gap with cross-field dose width for rounded leaf-end multileaf collimator systems
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A simple method for determining dosimetric leaf gap with cross-field dose width for rounded leaf-end multileaf collimator systems

机译:确定圆形叶端多叶准直仪系统具有跨场剂量宽度的剂量叶间隙的简单方法

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The dosimetric leaf gap (DLG) and multileaf collimator (MLC) transmission are two important systematic parameters used to model the rounded MLC leaf ends effect when commissioning an Eclipse treatment planning system (TPS). Determining the optimal DLG is a time consuming process. This study develops a simple and reliable method for determining the DLG using the cross-field dose width. A Varian TrueBeam linac with 6 MV, 10 MV, 6 MV flattening filter free (FFF) and 10 MV FFF photon beams and equipped with the 120 Millennium MLC and the Eclipse? TPS was used in this study. Integral sliding fields and static slit MLC field doses with different gap widths were measured with an ionization chamber and GAFCHROMIC EBT3 films, respectively. Measurements were performed for different beam energies and at depths of 5 and 10?cm. DLGs were derived from a linear extrapolation to zero dose and intercepting at the gap width axis. In the ion chamber measurements method, the average MLC leaf transmission to the gap reading for each gap (RgT) were calculated with nominal and cross-field dose widths, respectively. The cross-field dose widths were determined according to the dose profile measured with EBT3 films. Additionally, the optimal DLG values were determined using plan dose measurements, as the value that produced the closest agreement between the planned and measured doses. DLGs derived from the nominal and cross-field dose width, the film measurements, and the optimal process, were obtained and compared. The DLG values are insensitive to the variations in depth (within 0.07?mm). DLGs derived from nominal gap widths showed a significantly lower values (with difference about 0.5?mm) than that from cross-field dose widths and from film measurements and from plan optimal values. The method in deriving DLGs by correcting the nominal gap widths to the cross-field dose widths has shown good agreements to the plan optimal values (with difference within 0.21?mm). The DLG values derived from the cross-field dose width method were consistent with the values derived from film measurements and from the plan optimal process. A simple and reliable method to determine DLG for rounded leaf-end MLC systems was established. This method provides a referable DLG value required during TPS commissioning.
机译:剂量叶间隙(DLG)和多叶准直器(MLC)传输是两个重要的系统参数,用于在调试Eclipse处理计划系统(TPS)时对圆形的MLC叶端效应建模。确定最佳DLG是一个耗时的过程。这项研究开发了一种简单可靠的方法,可使用跨场剂量宽度确定DLG。配备6 MV,10 MV,6 MV扁平化无滤光片(FFF)和10 MV FFF光子束的Varian TrueBeam直线加速器,并配备了120 Millennium MLC和Eclipse? TPS用于这项研究。使用电离室和GAFCHROMIC EBT3膜分别测量了具有不同间隙宽度的积分滑动场和静态狭缝MLC场剂量。在5和10?cm的深度对不同的光束能量进行了测量。 DLGs是从线性外推至零剂量并在间隙宽度轴处截距得出的。在离子室测量方法中,分别使用标称和跨场剂量宽度计算平均MLC叶片对每个间隙(RgT)的间隙读数的透射率。根据用EBT3膜测得的剂量分布确定交叉场剂量宽度。另外,使用计划剂量测量确定了最佳DLG值,作为在计划剂量和测量剂量之间产生最接近一致性的值。获得并比较了从标称和交叉场剂量宽度,薄膜测量值和最佳工艺得出的DLG。 DLG值对深度的变化不敏感(0.07?mm以内)。由标称间隙宽度得出的DLG值(相差约0.5?mm)显着低于跨场剂量宽度,膜测量值和计划最佳值。通过将标称间隙宽度校正为跨场剂量宽度来推导DLG的方法与计划的最佳值(相差在0.21?mm以内)显示出良好的一致性。从交叉场剂量宽度方法得出的DLG值与从薄膜测量和计划最佳过程得出的值一致。建立了一种简单可靠的方法来确定圆形叶端MLC系统的DLG。这种方法可提供TPS调试期间所需的参考DLG值。

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