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Mathematical modeling of the heart using magnetic resonance imaging

机译:使用磁共振成像对心脏进行数学建模

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A hybrid three-dimensional solid mathematical model of cardiac ventricular geometry developed using magnetic resonance (MR) images of an in vivo canine heart is discussed. The modeling techniques were validated using MR images of an ex vivo heart and direct measurements of cardiac geometry and mass properties. A spin-echo MR sequence with in-plane resolution of 1.0 mm was used to image the canine heart in eleven short-axis planes at contiguous 5-mm intervals. Contour points on the epicardial, left ventricle (LV), and right ventricle (RV) boundaries were selected manually at each slice level. A boundary representation geometric model was constructed by fitting third-order nonuniform rational B-spline surfaces through each set of surface points. Compared to the anatomic specimen (AS), volume errors of the ex vivo model were 0.3, 1.5, and 5.8% for the LV cavity, RV cavity, and total enclosed volumes, respectively. Comparison of cross-sectional areas of the AS and the model at ten levels demonstrated mean model errors of 4.1, 2.5, and 2.9% for the LV, RV, and epicardial boundaries, respectively.
机译:讨论了使用活体犬心脏的磁共振(MR)图像开发的心脏心室几何结构的混合三维立体数学模型。使用离体心脏的MR图像并直接测量心脏的几何形状和质量特性来验证建模技术。平面内分辨率为1.0 mm的自旋回波MR序列用于以连续的5 mm间隔在十一个短轴平面上成像犬的心脏。在每个切片级别手动选择心外膜,左心室(LV)和右心室(RV)边界上的轮廓点。通过将三阶非均匀有理B样条曲面通过每组表面点拟合来构建边界表示几何模型。与解剖标本(AS)相比,离体模型的LV腔,RV腔和总封闭体积的体积误差分别为0.3%,1.5%和5.8%。在十个级别上比较AS和模型的横截面积,结果表明,LV,RV和心外膜边界的模型平均误差分别为4.1%,2.5%和2.9%。

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