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Fully automatic segmentation of the open mitral leaflets in 3D transesophageal echocardiographic images using multi-atlas label fusion and deformable medial modeling

机译:使用多地图集标签融合和可变形内侧建模的3D经乳管超声心动图中的张开二尖瓣张开二尖瓣的全自动分割

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The goal of this work is to develop a fully automatic method for segmentation of the mitral leaflets in 3D transesophageal echocardiographic (3D TEE) images. The method combines complementary probabilistic segmentation and geometric modeling techniques to generate 3D patient-specific reconstructions of the mitral leaflets and annulus from 3D TEE image data with no user interaction. In the model-based segmentation framework, mitral leaflet geometry is described with 3D continuous medial representation (cm-rep). To capture leaflet geometry in a target 3D TEE image, a pre-defined cm-rep template of the mitral leaflets is deformed such that the negative log of a Bayesian posterior probability is minimized. The likelihood of the objective function is given by a probabilistic segmentation of the mitral leaflets generated by multi-atlas joint label fusion, while the validity constraints and regularization terms imposed by cm-rep act as shape priors that preserve leaflet topology and constrain model fitting. The method is tested on ten 3D TEE images of human mitral leaflets at mid-diastole, using manual segmentation as the gold standard.
机译:这项工作的目的是开发三维超声心动图经食管(TEE 3D)图像二尖瓣瓣叶的分割全自动方法。该方法结合互补概率分割和几何建模技术来产生在没有用户交互的二尖瓣小叶和环从3D图像TEE数据的3D患者特异性重建。在基于模型的分割的框架,二尖瓣小叶的几何形状与3D连续内侧表示(厘米-REP)中描述。为了捕捉小叶几何形状中的目标三维图像TEE,二尖瓣小叶的预先定义厘米-REP模板变形,使得贝叶斯的负log后验概率被最小化。目标函数的可能性是通过多图谱产生关节标签融合二尖瓣小叶的概率分割给定,而有效性约束和正则项以厘米-REP行为施加作为形状先验能够维护小叶的拓扑结构和约束模型拟合。该方法在舒张中期对人类二尖瓣小叶10的3D图像TEE测试,使用手动分割的黄金标准。

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