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Accelerated radial magnetic resonance imaging: New applications and methods

机译:加速径向磁共振成像:新的应用和方法

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摘要

Magnetic resonance imaging is a widely used medical imaging technique, and accelerated data acquisition is critical for clinical utility. In this thesis, new techniques that incorporate radial acquisition, compressed sensing and sparse regularization for improved rapid imaging are presented.;Sufficiently accelerated imaging methods can lead to new applications. Here we demonstrate a solution to lung imaging during forced expiration using accelerated MRI. A technique for dynamic 3D imaging of the lungs from highly undersampled data is developed and tested on six subjects. This method takes advantage of image sparsity, both spatially and temporally, including the use of reference frames called bookends. Sparsity, with respect to total variation, and residual from the bookends, enables reconstruction from an extremely limited amount of data. Dynamic 3D images can be captured at an unprecedented sub-150 ms temporal resolution, using only three (or less) acquired radial lines per slice per time point. Lung volume calculations based on image segmentation are compared to those from simultaneously acquired spirometer measurements.;Additionally, accelerated imaging methods can be used to improve upon widely used applications; we also present a technique for improved T2-mapping. A novel model-based compressed sensing method is extended to include a sparse regularization that is learned from the principal component coefficients. The principal components are determined by a range of T2 decay curves, and the coefficients of the principal components are reconstructed. These coefficient maps share coherent spatial structures, and a spatial patch--based dictionary is a learned for a sparse constraint. This transformation is learned from the coefficients themselves. The proposed reconstruction is suited for non-Cartesian, multi-channel data. The dictionary constraint leads to parameter maps with less noise and less aliasing for high amounts of acceleration.
机译:磁共振成像是一种广泛使用的医学成像技术,加速数据采集对于临床应用至关重要。本文提出了一种结合径向采集,压缩感知和稀疏正则化的新技术,以提高快速成像的效率。充分加速的成像方法可以带来新的应用。在这里,我们演示了使用加速MRI在强制呼气期间对肺部成像的解决方案。开发了一种从高度欠采样的数据中对肺进行动态3D成像的技术,并在六个对象上进行了测试。这种方法在空间和时间上都利用了图像稀疏性,包括使用称为书挡的参考帧。相对于总变化的稀疏性以及书挡中的残差,使得能够从极其有限的数据中重建数据。动态3D图像可以以前所未有的150毫秒以下的时间分辨率捕获,每个时间点每个切片仅使用三条(或更少)采集的径向线。将基于图像分割的肺体积计算与同时获取的肺活量计测量结果进行比较。此外,加速成像方法可用于改进广泛使用的应用;我们还提出了一种改进T2映射的技术。一种新颖的基于模型的压缩传感方法已扩展为包括从主成分系数中学习的稀疏正则化。主成分由一系列T2衰减曲线确定,并重建主成分的系数。这些系数图共享相干的空间结构,并且基于空间补丁的字典是针对稀疏约束而学习的。这种转换是从系数本身获悉的。所提出的重建适用于非笛卡尔多通道数据。字典约束导致参数映射具有更少的噪声和更少的高加速度混叠。

著录项

  • 作者

    Berman, Benjamin Paul.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Medical imaging.;Applied mathematics.;Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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