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A Level Set Approach to Segmenting A Deforming Myocardium from Dynamically Acquired SPECT Projection Data

机译:一种分段动态获取的SPECT投影数据分割变形心肌的水平集方法

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Dynamic cardiac single photon emission computed tomography (SPECT) offers an effective way for observing fundamental physiological functions of organs and could aid in the early diagnosis of cardiovascular disease, in particular, for those patients with minimal disease. This would improve the chances of recovery by initiating appropriate therapy and an altered life style. To make dynamic cardiac SPECT viable with present clinical scanners methods need to be developed that reconstruct time activity curves from dynamically moving organs representing the change of tracer concentration as a function of time from projection data acquired from slowly rotating gamma cameras. This type of data analysis faces the challenge of modeling both rigid and non-rigid body deformation as well as modeling of a time varying tracer concentration. In the work presented here, we develop methods for segmenting the beating heart using an approach based upon level sets, which can deal naturally with topological changes. A variational formulation of the level set method was implemented. This allowed the inclusion of a priori information and was computationally efficient. The algorithm was first evaluated with simulated dynamic cardiac image data. The MCAT phantom was used to generate data containing 32 time frames over one cardiac cycle. Each frame had a matrix size of 64×64×32 voxels with a resolution of 6.25 mm. Starting with an initial estimate of the boundary, the algorithm then converged to an accurate segmentation of the deforming heart. The initial estimate was not important and we could segment simultaneously both interior and exterior boundaries. This algorithm forms the foundation for the segmentation of the boundary of the deforming myocardium directly from projection data.
机译:动态心脏单光子发射计算断层扫描(SPECT)为观察器官的基本生理功能提供了一种有效的方法,并且可以帮助患有最小疾病患者的心血管疾病的早期诊断。这将通过启动适当的治疗和改变的生活方式来改善恢复的机会。为了使动态心脏SPECT与现有的临床扫描仪可行,需要开发方法,即重建时间活动曲线从动态移动器官,其代表示踪剂浓度的变化作为从从缓慢旋转伽马摄像机获取的投影数据的时间的函数。这种类型的数据分析面临着模拟刚性和非刚性体变形的挑战以及时变形示踪浓度的建模。在此处提供的工作中,我们使用基于水平集的方法进行分割跳动心脏的方法,这可以通过拓扑变化自然地处理。实施了水平集法的变分制剂。这允许包含先验信息并计算效率。首先用模拟动态心脏图像数据进行评估该算法。 MCAT幻像用于在一个心动周期中生成包含32个时间帧的数据。每个帧的矩阵尺寸为64×64×32体素,分辨率为6.25mm。从边界的初始估计开始,该算法融合到变形心脏的精确分割。初始估计并不重要,我们可以同时进行内部和外部边界。该算法直接从投影数据形成变形心肌边界的基础。

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