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3-D lung deformation and function from respiratory-gated 4-D X-ray CT images: Application to radiation treatment planning.

机译:呼吸门控的4-D X射线CT图像显示的3-D肺变形和功能:在放射治疗计划中的应用。

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摘要

Many lung diseases or injuries can cause biomechanical or material property changes that can alter lung function. While the mechanical changes associated with the change of the material properties originate at a regional level, they remain largely asymptomatic and are invisible to global measures of lung function until they have advanced significantly and have aggregated. In the realm of external beam radiation therapy of patients suffering from lung cancer, determination of patterns of pre- and post-treatment motion, and measures of regional and global lung elasticity and function are clinically relevant. In this dissertation, we demonstrate that 4-D CT derived ventilation images, including mechanical strain, provide an accurate and physiologically relevant assessment of regional pulmonary function which may be incorporated into the treatment planning process.;(i) A new volumetric deformable image registration technique based on 3-D optical flow (MOFID) has been designed and implemented which permits the possibility of enforcing physical constraints on the numerical solutions for computing motion field from respiratory-gated 4-D CT thoracic images. The proposed optical flow framework is an accurate motion model for the thoracic CT registration problem.;(ii) A large displacement landmark-base elastic registration method has been devised for thoracic CT volumetric image sets containing large deformations or changes, as encountered for example in registration of pre-treatment and post-treatment images or multi-modality registration.;(iii) Based on deformation maps from MOFID, a novel framework for regional quantification of mechanical strain as an index of lung functionality has been formulated for measurement of regional pulmonary function.;Our contributions are as follows:;(iv) In a cohort consisting of seven patients with non-small cell lung cancer, validation of physiologic accuracy of the 4-D CT derived quantitative images including Jacobian metric of ventilation, VJac and principal strains, ( Vl1,Vl2 ,Vl3 ), has been performed through correlation of the derived measures with SPECT ventilation and perfusion scans. The statistical correlations with SPECT have shown that the maximum principal strain pulmonary function map derived from MOFID, outperforms all previously established ventilation metrics from 4D-CT.;It is hypothesized that use of CT-derived ventilation images in the treatment planning process will help predict and prevent pulmonary toxicity due to radiation treatment. It is also hypothesized that measures of regional and global lung elasticity and function obtained during the course of treatment may be used to adapt radiation treatment. Having objective methods with which to assess pre-treatment global and regional lung function and biomechanical properties, the radiation treatment dose can potentially be escalated to improve tumor response and local control.
机译:许多肺部疾病或伤害会导致生物力学或材料特性变化,从而改变肺功能。虽然与材料特性变化相关的机械变化起源于区域性水平,但它们在很大程度上没有症状,对于肺功能的整体测量是看不见的,直到它们显着发展并聚集为止。在肺癌患者的外部束放射治疗领域,治疗前后运动方式的确定以及区域和整体肺弹性和功能的测量在临床上是相关的。在本文中,我们证明了4-D CT衍生的通气图像(包括机械应变)可提供对区域肺功能的准确且生理相关的评估,可将其纳入治疗计划过程中;(i)一种新的体积可变形图像配准已经设计并实现了基于3-D光流(MOFID)的图像处理技术,该技术允许对从呼吸门控4D CT胸部图像计算运动场的数值解实施物理约束。所提出的光流框架是解决胸部CT配准问题的精确运动模型。(ii)针对包含较大变形或变化的胸部CT体积图像集设计了一种大位移地标基弹性配准方法,例如在(3)基于MOFID的变形图,制定了一种新的框架,用于量化机械应变作为肺功能指标的区域量化方法,用于测量区域肺我们的贡献如下:(iv)在由7名非小细胞肺癌患者组成的队列中,验证了4-D CT衍生的定量图像的生理准确性,包括通气的Jacobian度量,VJac和主要菌株(Vl1,Vl2,Vl3)已通过将派生的测量值与SPECT通气和灌注扫描进行关联来执行。与SPECT的统计相关性表明,从MOFID导出的最大主应变肺功能图优于先前通过4D-CT建立的所有通气指标。;假设在治疗计划过程中使用CT衍生的通气图像将有助于预测并防止由于放射治疗而引起的肺毒性。还假设在治疗过程中获得的区域和整体肺弹性和功能的测量值可用于调整放射治疗。有了客观的方法来评估治疗前的总体和局部肺功能以及生物力学特性,可以潜在地提高放射治疗剂量以改善肿瘤反应和局部控制。

著录项

  • 作者

    Negahdar, Mohammadreza.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Engineering Electronics and Electrical.;Health Sciences Radiology.;Computer Science.;Health Sciences Oncology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 113 p.
  • 总页数 113
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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