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Extraction of Cardiac Motion Using Scale-Space Features Points and Gauged Reconstruction

机译:使用尺度空间特征点和量表重建提取心脏运动

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Motion estimation is an important topic in medical image analysis. The investigation and quantification of, e.g., the cardiac movement is important for assessment of cardiac abnormalities and to get an indication of response to therapy. In this paper we present a new aperture problem-free method to track cardiac motion from 2-dimensional MR tagged images and corresponding sine-phase images. Tracking is achieved by following the movement of scale-space critical points such as maxima, minima and saddles. Reconstruction of dense velocity field is carried out by minimizing an energy functional with regularization term influenced by covariant derivatives gauged by a prior assumption. MR tags deform along with the tissue, a combination of MR tagged images and sine-phase images was employed to produce a regular grid from which the scale-space critical points were retrieved. Experiments were carried out on real image data, and on artificial phantom data from which the ground truth is known. A comparison between our new method and a similar technique based on homogeneous diffusion regularization and standard derivatives shows increase in performance. Qualitative and quantitative evaluation emphasize the reliability of dense motion field allowing further analysis of deformation and torsion of the cardiac wall.
机译:运动估计是医学图像分析中的重要主题。对例如心脏运动的研究和量化对于评估心脏异常并获得对治疗反应的指示很重要。在本文中,我们提出了一种新的孔径无问题方法,可从二维MR标记图像和相应的正弦相位图像中跟踪心脏运动。通过跟踪尺度空间临界点(例如最大值,最小值和鞍形)的移动来实现跟踪。通过最小化具有正则化项的能量函数来进行密集速度场的重构,该正则化项受先验假设测得的协变导数的影响。 MR标签随组织一起变形,将MR标签图像和正弦相位图像结合使用以生成规则网格,从该网格中检索尺度空间临界点。实验是在真实图像数据和人工幻像数据上进行的,从中可以得知地面真实情况。我们的新方法与基于均质扩散正则化和标准导数的类似技术之间的比较显示出性能的提高。定性和定量评估强调了密集运动场的可靠性,从而可以进一步分析心脏壁的变形和扭转。

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