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From medical images to individualized cardiac mechanics: A physiome approach.

机译:从医学影像到个性化的心脏力学:一种物理组学方法。

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摘要

Cardiac mechanics is a branch of science that deals with forces, kinematics, and material properties of the heart, which is valuable for clinical applications and physiological studies. Although anatomical and biomechanical experiments are necessary to provide the fundamental knowledge of cardiac mechanics, the invasive nature of the procedures limits their further applicability. In consequence, noninvasive alternatives are required, and cardiac images provide an excellent source of subject-specific and in vivo information.;Noninvasive and individualized cardiac mechanical studies can be achieved through coupling general physiological models derived from invasive experiments with subject-specific information extracted from medical images. Nevertheless, as data extracted from images are gross, sparse, or noisy, and do not directly provide the information of interest in general, the couplings between models and measurements are complicated inverse problems with numerous issues need to be carefully considered.;The goal of this research is to develop a noninvasive framework for studying individualized cardiac mechanics through systematic coupling between cardiac physiological models and medical images according to their respective merits. More specifically, nonlinear state-space filtering frameworks for recovering individualized cardiac deformation and local material parameters of realistic nonlinear constitutive laws have been proposed.;To ensure the physiological meaningfulness, clinical relevance, and computational feasibility of the frameworks, five key issues have to be properly addressed, including the cardiac physiological model, the heart representation in the computational environment, the information extraction from cardiac images, the coupling between models and image information, and also the computational complexity. For the cardiac physiological model, a cardiac physiome model tailored for cardiac image analysis has been proposed to provide a macroscopic physiological foundation for the study. For the heart representation, a meshfree method has been adopted to facilitate implementations and spatial accuracy refinements. For the information extraction from cardiac images, a registration method based on free-form deformation has been adopted for robust motion tracking. For the coupling between models and images, state-space filtering has been applied to systematically couple the models with the measurements. For the computational complexity, a mode superposition approach has been adopted to project the system into an equivalent mathematical space with much fewer dimensions for computationally feasible filtering. Experiments were performed on both synthetic and clinical data to verify the proposed frameworks.
机译:心脏力学是科学的一门学科,涉及心脏的力量,运动学和物质特性,这对于临床应用和生理学研究很有价值。尽管必须进行解剖学和生物力学实验才能提供心脏力学的基本知识,但该手术的侵入性限制了其进一步的适用性。因此,需要非侵入性替代方法,并且心脏图像可提供特定对象和体内信息的极佳来源。通过将侵入性实验衍生的一般生理模型与从中提取的特定对象信息相结合,可以实现非侵入性和个性化的心脏力学研究医学图像。然而,由于从图像中提取的数据是粗略,稀疏或嘈杂的,并且通常不直接提供感兴趣的信息,因此模型和度量之间的耦合是复杂的逆问题,需要仔细考虑许多问题。这项研究旨在通过根据心脏生理模型和医学图像各自的优点进行系统的耦合,开发一种用于研究个性化心脏力学的非侵入性框架。更具体地说,提出了用于恢复现实非线性本构关系的个体化心脏变形和局部材料参数的非线性状态空间过滤框架;为了确保框架的生理意义,临床相关性和计算可行性,必须解决五个关键问题适当解决的问题包括心脏生理模型,计算环境中的心脏表示,从心脏图像中提取信息,模型与图像信息之间的耦合以及计算复杂性。对于心脏生理模型,已经提出了针对心脏图像分析量身定制的心脏生理组模型,以为研究提供宏观的生理基础。对于心脏表示,已采用无网格方法来促进实现和空间精度的改进。为了从心脏图像中提取信息,已采用基于自由形式变形的配准方法进行鲁棒的运动跟踪。对于模型和图像之间的耦合,状态空间滤波已被应用来将模型与测量系统地耦合。对于计算复杂性,已采用模式叠加方法将系统投影到等效数学空间中,而该维数空间要少得多,以便进行计算上可行的滤波。对合成和临床数据均进行了实验,以验证所提出的框架。

著录项

  • 作者

    Wong, Chun Lok.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 268 p.
  • 总页数 268
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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