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5D model for accurate representation and visualization of dynamic cardiac structures

机译:用于动态心脏结构的精确表示和可视化的5D模型

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Abstract: Accurate cardiac modeling is challenging due to the intricate structure and complex contraction patterns of myocardial tissues. Fast imaging techniques can provide 4D structural information acquired as a sequence of 3D images throughout the cardiac cycle. To mode. The beating heart, we created a physics-based surface model that deforms between successive time point in the cardiac cycle. 3D images of canine hearts were acquired during one complete cardiac cycle using the DSR and the EBCT. The left ventricle of the first time point is reconstructed as a triangular mesh. A mass-spring physics-based deformable mode,, which can expand and shrink with local contraction and stretching forces distributed in an anatomically accurate simulation of cardiac motion, is applied to the initial mesh and allows the initial mesh to deform to fit the left ventricle in successive time increments of the sequence. The resulting 4D model can be interactively transformed and displayed with associated regional electrical activity mapped onto anatomic surfaces, producing a 5D model, which faithfully exhibits regional cardiac contraction and relaxation patterns over the entire heart. The model faithfully represents structural changes throughout the cardiac cycle. Such models provide the framework for minimizing the number of time points required to usefully depict regional motion of myocardium and allow quantitative assessment of regional myocardial motion. The electrical activation mapping provides spatial and temporal correlation within the cardiac cycle. In procedures which as intra-cardiac catheter ablation, visualization of the dynamic model can be used to accurately localize the foci of myocardial arrhythmias and guide positioning of catheters for optimal ablation. !21
机译:摘要:由于心肌组织的复杂结构和复杂的收缩模式,准确的心脏建模具有挑战性。快速成像技术可以提供在整个心动周期中作为3D图像序列获取的4D结构信息。到模式。跳动的心脏,我们创建了一个基于物理的表面模型,该模型在心动周期的连续时间点之间变形。使用DSR和EBCT在一个完整的心动周期中采集犬心脏的3D图像。第一个时间点的左心室被重建为三角形网格。基于质量弹簧物理学的可变形模式(可在局部解剖和精确的心脏运动模拟中通过局部收缩和拉伸力进行扩展和收缩)应用于初始网格,并允许初始网格变形以适合左心室在序列的连续时间增量中。可以交互转换所得的4D模型并将其与关联的区域电活动映射到解剖表面上一起显示,从而生成5D模型,该模型如实地展现了整个心脏的局部心脏收缩和舒张模式。该模型忠实地代表了整个心动周期的结构变化。这样的模型提供了用于最小化有效描绘心肌区域运动并允许定量评估区域心肌运动所需的时间点数量的框架。电激活映射提供心动周期内的空间和时间相关性。在作为心脏内导管消融的程序中,可以使用动态模型的可视化来准确定位心肌心律不齐的病灶并指导导管定位以实现最佳消融。 !21

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