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A Measure of Voxel Similarity for Improving the Image-Based Quantification of Tissue Structure and Function.

机译:体素相似性的一种度量,用于改进基于图像的组织结构和功能的量化。

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摘要

Therapeutic response assessment is a key component in adaptive image-guided radiotherapy. Conventional anatomic measures of response offer little information about the spatial distribution of tumor change. Recently developed voxel-wise response assessment methods operating on functional and biological imaging are better capable of evaluating the heterogeneity of response within the tumor, and thus may yield greater sensitivity than conventional approaches. However, voxel-wise analyses are limited by local registration uncertainties inherent to longitudinal imaging of tumors with changing morphology. A multi-resolution local histogram (LH) moment-based measure of voxel similarity was developed for the purpose of assessing the strength of correspondence between voxels of serial tumor images. This measure was first benchmarked through a series of experiments designed to establish robustness to image intensity variation and sensitivity to alterations in tissue structure through application of simulated deformations. The LH similarity method was subsequently developed as a means of mapping the spatial extent of structural change in tumors through the incorporation of an estimate of image complexity. The change maps were applied to a voxel-wise analysis of diffusion-weighted magnetic resonance imaging of patients with glioblastoma, acquired pre- and post-chemoradiotherapy. The sensitivity of the voxel-wise analysis in differentiating responding/stable patients from non-responding/progressing patients was improved by stratifying the analysis voxels according to regions of interest (ROI) based on the LH similarity-based estimate of tumor change. Meaningful correspondence relationships between evaluated voxels are essential for accurate image-based quantification of tumor structure and function with voxel-wise analysis techniques. The LH similarity methods developed here can robustly evaluate the quality of spatial and temporal voxel correspondence relationships and provide an automated tool for ROI selection and voxel change stratification. It is readily extendable to the analysis of the wide array of anatomic, functional and biological imaging currently used to characterize tumors, guide therapy and assess response.
机译:治疗反应评估是自适应图像引导放射治疗的关键组成部分。常规的反应解剖学措施几乎没有提供有关肿瘤变化的空间分布的信息。最近开发的在功能和生物成像上运行的按像素分类的反应评估方法,能够更好地评估肿瘤内反应的异质性,因此比常规方法具有更高的敏感性。但是,体素方式分析受到形态变化的肿瘤纵向成像固有的局部配准不确定性的限制。为了评估连续肿瘤图像的体素之间的对应强度,开发了一种基于多分辨率局部直方图(LH)矩的体素相似性度量。该措施首先通过一系列实验进行基准测试,这些实验旨在通过应用模拟变形来建立图像强度变化的鲁棒性和组织结构变化的敏感性。 LH相似性方法随后被开发为通过纳入图像复杂性估算来绘制肿瘤结构变化的空间范围的方法。将变化图应用于胶质母细胞瘤患者,化放疗前后的扩散加权磁共振成像的体素分析。通过基于基于LH相似性的肿瘤变化估计对感兴趣区域(ROI)进行分层分析,可以提高区分敏感/稳定患者和非敏感/进展患者的体素明智分析的敏感性。被评估的体素之间有意义的对应关系对于使用基于体素的分析技术对肿瘤结构和功能进行精确的基于图像的量化至关重要。此处开发的LH相似性方法可以稳健地评估空间和时间体素对应关系的质量,并提供用于ROI选择和体素更改分层的自动化工具。它很容易扩展到目前用于表征肿瘤,指导治疗和评估反应的各种解剖,功能和生物学成像的分析。

著录项

  • 作者

    Hoisak, Jeremy David Page.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Health Sciences Radiology.;Health Sciences Oncology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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