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Four-dimensional Monte Carlo investigation of organ motion in radiotherapy for lung cancer.

机译:肺癌放射疗法中器官运动的四维蒙特卡洛研究。

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摘要

A limitation of current dose calculation algorithms employed in radiotherapy treatment planning is the assumption that the patient's anatomy is static throughout the imaging, planning and delivery. 4D dose calculation methods employ non-linear image registration to determine the cumulative dose received in a deforming anatomy. In this work, we developed a 4D Monte Carlo dose calculation code, designated defDOSXYZ, which determines the dose received in a deforming voxel grid. Voxel deformations were determined from deformation vectors resulting from non-linear image registration between images of the reference and target states. The ANIMAL non-linear image registration algorithm was implemented for registration of thoracic 4D CT images. Modifications were performed to ANIMAL to minimize deformation vector discontinuities. A method for correcting artifacts in 4D CT images was developed which uses non-linear image registration to interpolate voxel intensities from temporally adjacent artifact-free images. Dose calculations in deforming phantoms and 4D CT patient data using defDOSXYZ were compared to conventional center-of-mass (COM) and trilinear (TL) dose remapping methods.;The accuracy of non-linear image registration between inhale and exhale images for 5 lung patients was found to be within 2 mm which was deemed acceptable for clinical dose calculations. Temporal interpolation using ANIMAL was demonstrated to improve image quality in 4D data sets containing motion artifacts.;Comparison of dose remapping from Inhale to Exhale in an anatomical breathing phantom revealed that interpolation methods underestimate the dose in the penumbra and near the surface. defDOSXYZ calculations were also compared with two dose remapping methods in 4D CT patient data. Systematic offsets between the dose calculation methods were noted which were attributed to inconsistent handling of voxel mass conservation in the image registration and dose calculations. A mass-consistent comparison of defDOSXYZ calculations and remapping calculations for clinically relevant planning scenarios and dose grid sizes revealed discrepancies in regions of steep gradients which was consistent with the phantom studies. No clinically significant differences in planning volume doses were noted between all three dose calculation methods, although conventional dose remapping failed to predict certain details of the cumulative dose distribution which may be important for 4D conformal treatment planning.;defDOSXYZ calculations were determined to be accurate to within 1% by comparison with DOSXYZ calculations and internal consistency checks. Conventional dose remapping methods were found to underestimate the dose by 29% and 8%, on average, when remapping dose from Exhale to Inhale within simple deforming phantoms with voxel sizes of 1 cm and 0.5 cm, respectively. These discrepancies were reduced to 0.2% for voxel sizes of 0.25 cm and smaller, however dose errors of 20-30% still existed in regions of steep dose gradients.
机译:放射疗法治疗计划中使用的当前剂量计算算法的局限性是假设患者的身体在整个成像,计划和递送过程中都是静态的。 4D剂量计算方法采用非线性图像配准来确定在变形解剖结构中接收到的累积剂量。在这项工作中,我们开发了一个名为defDOSXYZ的4D蒙特卡洛剂量计算代码,该代码确定了变形体素网格中接收到的剂量。根据变形向量确定体素变形,变形向量是由参考状态和目标状态的图像之间的非线性图像配准产生的。实施了ANIMAL非线性图像配准算法来对胸4D CT图像配准。对动物进行了修改以最小化变形矢量的不连续性。开发了一种用于校正4D CT图像中伪影的方法,该方法使用非线性图像配准从时间相邻的无伪影图像中插入体素强度。将使用defDOSXYZ进行的变形体模剂量计算和4D CT患者数据与传统的质心(COM)和三线性(TL)剂量重映射方法进行了比较; 5个肺的吸气和呼气图像之间的非线性图像配准的准确性发现患者在2 mm以内,这对于临床剂量计算而言是可以接受的。已证明使用ANIMAL进行时间插值可改善包含运动伪像的4D数据集的图像质量。在解剖呼吸模型中从吸入到呼出的剂量重映射比较表明,插值方法会低估半影和近地表的剂量。在4D CT患者数据中,还将defDOSXYZ计算与两种剂量重新映射方法进行了比较。注意到剂量计算方法之间的系统偏移,这是由于在图像配准和剂量计算中体素质量守恒处理不一致。 defDOSXYZ计算和重新映射计算在临床上相关的规划方案和剂量网格大小的质量一致性比较显示,陡坡区域存在差异,这与幻像研究一致。尽管常规剂量重新映射无法预测累积剂量分布的某些细节,这对4D保形治疗计划可能很重要,但在所有三种剂量计算方法之间,在计划体积剂量上均未发现临床上的显着差异。defDOSXYZ计算被确定为对与DOSXYZ计算和内部一致性检查相比,误差在1%以内。当在体素大小分别为1 cm和0.5 cm的简单变形体模中,从呼气到吸气的重新映射剂量时,传统的剂量重新映射方法平均低估了29%和8%的剂量。对于0.25 cm和更小的体素大小,这些差异降低到0.2%,但是在陡峭的剂量梯度区域中仍然存在20-30%的剂量误差。

著录项

  • 作者

    Heath, Emily.;

  • 作者单位

    McGill University (Canada).;

  • 授予单位 McGill University (Canada).;
  • 学科 Health Sciences Radiology.;Biophysics Medical.;Physics Radiation.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 255 p.
  • 总页数 255
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:38

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