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动态多叶准直器辐射场偏移的实验研究

An experimental investigation into the radiation field offset of a dynamic multileaf collimator.

作者信息

Vial Philip, Oliver Lyn, Greer Peter B, Baldock Clive

机构信息

Northern Sydney Cancer Centre, Radiation Oncology, Royal North Shore Hospital, NSW 2065, Australia.

出版信息

Phys Med Biol. 2006 Nov 7;51(21):5517-38. doi: 10.1088/0031-9155/51/21/009. Epub 2006 Oct 9.

Abstract

In this study we investigate the characteristics of a rounded leaf end multileaf collimator (MLC) that is used for delivering intensity-modulated radiotherapy (IMRT) with a Varian linear accelerator. The rounded leaf end MLC design results in an offset between the radiation field edge (the physical leaf position) and the light field (the geometric leaf position). We call this the radiation field offset (RFO). The leaf position is calibrated to the leaf tip at the mid-leaf plane. There is an additional offset between the geometric leaf position and the projected leaf tip position that varies as a function of distance from the collimator central axis due to the MLC geometry. We call this the leaf position offset (LPO). There is a lack of consistency in the interpretation and implementation of the RFO and the LPO in the literature. We investigated the RFO and the LPO on Varian's 600 C/D and 21 EX linear accelerators. We used a combination of film and ion chamber measurements of static, segmental MLC (SMLC) and dynamic MLC (DMLC) fields to quantify the leaf offsets across the range of leaf positions. We were able to improve the dosimetry at large off-axis positions with minor adjustments to the vendor's LPO file. The RFO was determined to within 0.1 mm accuracy at the collimator central axis. The measured RFO value depends on whether the method is based on the radiation field edge position or on an integral dose measurement. The integral dose method results in an RFO that is approximately 0.2 mm greater than the radiation field edge method. The difference is due to the MLC penumbra shape. We propose a methodology for measuring and implementing MLC leaf offsets that is suitable for both SMLC and DMLC IMRT. In addition, we propose some definitions that more clearly describe the MLC leaf position for accurate IMRT dosimetry.

摘要

在本研究中,我们调查了一种圆形叶端多叶准直器(MLC)的特性,该准直器用于与瓦里安直线加速器配合进行调强放射治疗(IMRT)。圆形叶端MLC设计导致辐射野边缘(物理叶片位置)与光野(几何叶片位置)之间存在偏移。我们将此称为辐射野偏移(RFO)。叶片位置在叶片中间平面处校准到叶尖。由于MLC几何形状,几何叶片位置与投影叶尖位置之间还存在额外偏移,该偏移随距准直器中心轴的距离而变化。我们将此称为叶片位置偏移(LPO)。文献中对RFO和LPO的解释与实施缺乏一致性。我们在瓦里安的600 C/D和21 EX直线加速器上研究了RFO和LPO。我们结合使用胶片和电离室对静态、分段MLC(SMLC)和动态MLC(DMLC)野进行测量,以量化整个叶片位置范围内的叶片偏移。通过对供应商的LPO文件进行微小调整,我们能够改善大离轴位置处的剂量学。在准直器中心轴处,RFO的确定精度在0.1毫米以内。测得的RFO值取决于该方法是基于辐射野边缘位置还是基于积分剂量测量。积分剂量法得出的RFO比辐射野边缘法大约大0.2毫米。差异是由于MLC半值层形状所致。我们提出了一种测量和实施MLC叶片偏移的方法,该方法适用于SMLC和DMLC IMRT。此外,我们还提出了一些定义,能更清晰地描述MLC叶片位置以进行精确的IMRT剂量学研究。

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