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Incompressible Phase Registration for Motion Estimation from Tagged Magnetic Resonance Images

机译:不可压缩相位配准,用于根据标记的磁共振图像进行运动估计

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摘要

Tagged magnetic resonance imaging has been used for decades to observe and quantify motion and strain of deforming tissue. Three-dimensional (3D) motion estimation has been challenging due to a tradeoff between slice density and acquisition time. Typically, sparse collections of tagged slices are processed to obtain two-dimensional motion, which are then combined into 3D motion using interpolation methods. This paper proposes a new method by reversing this process: first interpolating tagged slices and then directly estimating motion in 3D. We propose a novel image registration framework that uses the concept of dif-feomorphic registration with a key novelty that defines a similarity metric involving the simultaneous use of three harmonic phase volumes. The other novel aspect is the use of the harmonic magnitude to enforce incom-pressibility in the tissue region. The final motion estimates are dense, incompressible, diffeomorphic, and invertible at a 3D voxel level. The approach was evaluated using simulated phantoms and human tongue motion data in speech. Compared with an existing method, it shows major advantages in reducing processing complexity, improving computation speed, allowing running motion calculations, and increasing noise robustness, while maintaining a good accuracy.
机译:标记磁共振成像已经使用了几十年,以观察和量化变形组织的运动和应变。由于切片密度和采集时间之间的权衡,三维(3D)运动估计一直具有挑战性。通常,对经过标记的切片的稀疏集合进行处理以获得二维运动,然后使用插值方法将其组合为3D运动。本文提出了一种通过逆转此过程的新方法:首先对标记的切片进行插值,然后直接估计3D中的运动。我们提出了一种新颖的图像配准框架,该框架使用具有不同新颖性的配准概念,该配准具有定义涉及同时使用三个谐波相体积的相似性度量的关键新颖性。另一个新颖的方面是使用谐波幅度来增强组织区域中的不可压缩性。最终运动估计在3D体素级别上是密集的,不可压缩的,微晶的和可逆的。使用模拟体模和语音中的人类舌头运动数据对该方法进行了评估。与现有方法相比,它在降低处理复杂性,提高计算速度,允许运行运动计算以及提高噪声鲁棒性的同时,还保持了较高的准确性,从而显示出主要优势。

著录项

  • 来源
  • 会议地点 Athens(GR)
  • 作者单位

    Department of Radiology, Massachusetts General Hospital/Harvard Medical School, Boston, MA, USA;

    Department of Radiology, Massachusetts General Hospital/Harvard Medical School, Boston, MA, USA;

    Department of Electrical and Computer Engineering, Johns Hopkins University,Baltimore, MD, USA;

    Center for Neuroscience and Regenerative Medicine, Henry Jackson Foundation,Bethesda, MD, USA;

    Department of Mechanical Engineering and Materials Science,Washington University in St. Louis, St. Louis, MO, USA;

    Department of Neural and Pain Sciences,University of Maryland School of Dentistry, Baltimore, MD, USA;

    Department of Electrical and Computer Engineering, Johns Hopkins University,Baltimore, MD, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Motion; Tagged MRI; Phase; Registration; Incompressible;

    机译:运动;标记MRI;相;注册;不可压缩的;

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