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MR imaging of left-ventricular function: Novel image acquisition and analysis techniques.

机译:左心室功能的MR成像:新型图像采集和分析技术。

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摘要

This dissertation is concerned with the development of novel magnetic resonance imaging techniques and image postprocessing algorithms to analyze left ventricular deformations. A novel pulse sequence, termed Orthogonal CSPAMM (OCSPAMM), has been proposed which results in the same acquisition time as SPAMM for 2D deformation estimation while keeping the main advantages of CSPAMM: i.e., maintaining tag contrast through-out the ECG cycle. Different from CSPAMM, in OCSPAMM the second tagging pulse orientation is rotated 90 degrees relative to the first one so that motion information can be obtained simultaneously in two directions. This reduces the acquisition time by a factor of two as compared to the traditional CSPAMM, in which two separate imaging sequences are applied per acquisition. With the application of OCSPAMM, the effect of tag fading encountered in SPAMM tagging due to T1 relaxation is mitigated and tag deformations can be visualized for the entire cardiac cycle, including diastolic phases.;A novel 3D sine wave modeling (3D SinMod) approach for automatic analysis of 3D cardiac deformations has been proposed. An accelerated 3D complementary spatial modulation of magnetization (CSPAMM) tagging technique was used to acquire complete 3D+t tagged MR data sets of the whole heart (3 dynamic CSPAMM tagged MRI volume with tags in different orientations), in-vivo, in 54 heart beats and within 3 breath-holds. In 3D SinMod, the intensity distribution around each pixel is modeled as a cosine wave front. The principle behind 3D SinMod tracking is that both phase and frequency for each voxel are determined directly from the frequency analysis and the displacement is calculated from the quotient of phase difference and local frequency. The deformation fields clearly demonstrate longitudinal shortening during systole. The contraction of the LV base towards the apex as well as the torsional motion between basal and apical slices is clearly observable from the displacements. 3D SinMod can automatically process the image data to derive measures of motion, deformations, and strains between consecutive pair of tagged volumes in 17 seconds. Therefore, comprehensive 4D imaging and postprocessing for determination of ventricular function is now possible in under 10 minutes. For validation of 3D SinMod, 7 3D+t CSPAMM data sets of healthy subjects have been processed. Comparison of mid-wall contour deformations and circumferential shortening results by 3D SinMod showed good agreement with those by 3D HARP. Tag lines tracked by the proposed technique were also compared with manually delineated ones. The average errors calculated for the systolic phase of the cardiac cycles were in the sub-pixel range. (Abstract shortened by UMI.).;A multilevel B-spline fitting method (MBS) has been proposed which incorporates phase-based displacement information for accurate calculation of 2D motion and strain from tagged MRI. The proposed method combines the advantages of continuity and smoothness of MBS, and makes use of phase information derived from tagged MR images. Compared to previous 2D B-spline-based deformation analysis methods, MBS has the following advantages: 1) It can simultaneously achieve a smooth deformation while accurately approximating the given data set; 2) Computationally, it is very fast; and 3) It can produce more accurate deformation results. Since the tag intersections (intersections between two tag lines) can be extracted accurately and are more or less distributed evenly over the myocardium, MBS has proven effective for 2D cardiac motion tracking. To derive phase-based displacements, 2D HARP and SinMod analysis techniques were employed. By producing virtual tags from HARP/SinMod and calculating intersections of virtual tag lines, more data points are obtained. In the reference frame, virtual tag lines are the isoparametric curves of an undeformed 2D B-spline model. In subsequent frames, the locations of intersections of virtual tag lines over the myocardium are updated with phase-based displacement. The advantage of the technique is that in acquiring denser myocardial displacements, it uses both real and virtual tag line intersections. It is fast and more accurate than 2D HARP and SinMod tracking.
机译:【摘要】本文研究了新型的磁共振成像技术和图像后处理算法来分析左心室变形。已经提出了一种称为正交CSPAMM(OCSPAMM)的新型脉冲序列,该脉冲序列与SPAMM的采集时间相同,用于2D变形估计,同时保留了CSPAMM的主要优势:即在整个ECG周期内保持标签对比度。与CSPAMM不同,在OCSPAMM中,第二个标记脉冲方向相对于第一个方向旋转了90度,因此可以同时在两个方向上获得运动信息。与传统的CSPAMM相比,这将采集时间减少了两倍,而传统的CSPAMM每次采集应用了两个单独的成像序列。随着OCSPAMM的应用,减轻了由于T1松弛而在SPAMM标签中遇到的标签褪色的影响,并且可以在整个心动周期(包括舒张期)中看到标签变形。一种新颖的3D正弦波建模(3D SinMod)方法已经提出了3D心脏变形的自动分析。使用加速的3D磁化互补空间调制(CSPAMM)标记技术,在54颗心脏中获取完整的完整3D + t标记的整个心脏的MR数据集(3个动态CSPAMM标记的MRI卷,具有不同方向的标记)跳动并在3次屏气内。在3D SinMod中,每个像素周围的强度分布被建模为余弦波阵面。 3D SinMod跟踪的原理是,直接通过频率分析确定每个体素的相位和频率,并根据相位差和局部频率的商来计算位移。变形场清楚地显示出收缩期的纵向缩短。从位移可以清楚地观察到左心室基部向心尖的收缩以及基层和根尖之间的扭转运动。 3D SinMod可以自动处理图像数据,以在17秒内得出连续一对标记体积之间的运动,变形和应变的量度。因此,现在可以在10分钟内进行全面的4D成像和后处理,以确定心室功能。为了验证3D SinMod,已处理了7个健康受试者的3D + t CSPAMM数据集。 3D SinMod对中壁轮廓变形和周向缩短结果的比较与3D HARP的结果吻合良好。通过提议的技术跟踪的标记线也与手动描绘的标记线进行了比较。为心动周期的收缩期计算的平均误差在亚像素范围内。 (摘要由UMI缩短。);已经提出了一种多级B样条拟合方法(MBS),该方法结合了基于相位的位移信息,可以根据标记的MRI准确计算2D运动和应变。所提出的方法结合了MBS的连续性和平滑性的优点,并且利用了从标记的MR图像导出的相位信息。与以前的基于二维B样条的变形分析方法相比,MBS具有以下优点:1)在精确逼近给定数据集的同时,可以实现平滑变形。 2)计算上非常快; 3)可以产生更准确的变形结果。由于标签的交叉点(两条标签线之间的交叉点)可以准确地提取出来,或多或少地均匀分布在心肌上,因此MBS已被证明对2D心脏运动追踪有效。为了得出基于相位的位移,采用了2D HARP和SinMod分析技术。通过从HARP / SinMod生成虚拟标签并计算虚拟标签线的交点,可以获得更多的数据点。在参考框架中,虚拟标记线是未变形的2D B样条曲线模型的等参曲线。在随后的帧中,心肌上虚拟标记线相交的位置会根据基于相位的位移进行更新。该技术的优势在于,在获取更密集的心肌位移时,它同时使用了真实的和虚拟的标记线交叉点。它比2D HARP和SinMod跟踪更快,更准确。

著录项

  • 作者

    Wang, Hui.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Biomedical engineering.;Medical imaging.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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