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首页> 外文期刊>Biomedical and Health Informatics, IEEE Journal of >Automatic 3-D Segmentation of Endocardial Border of the Left Ventricle From Ultrasound Images
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Automatic 3-D Segmentation of Endocardial Border of the Left Ventricle From Ultrasound Images

机译:超声图像对左心室心内膜边界的自动3D分割

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The segmentation of the left ventricle (LV) is an important task to assess the cardiac function in ultrasound images of the heart. This paper presents a novel methodology for the segmentation of the LV in three-dimensional (3-D) echocardiographic images based on the probabilistic data association filter (PDAF). The proposed methodology begins by initializing a 3-D deformable model either semiautomatically, with user input, or automatically, and it comprises the following feature hierarchical approach: 1) edge detection in the vicinity of the surface (low-level features); 2) edge grouping to obtain potential LV surface patches (mid-level features); and 3) patch filtering using a shape-PDAF framework (high-level features). This method provides good performance accuracy in 20 echocardiographic volumes, and compares favorably with the state-of-the-art segmentation methodologies proposed in the recent literature.
机译:左心室(LV)的分割是评估心脏超声图像中的心功能的重要任务。本文提出了一种基于概率数据关联过滤器(PDAF)的三维(3-D)超声心动图图像中的LV分割方法。所提出的方法以通过用户输入或自动半自动初始化3-D变形模型开始,并且包括以下特征分层方法:1)表面附近的边缘检测(低级特征); 2)边缘分组以获得潜在的LV表面斑块(中级特征);和3)使用shape-PDAF框架(高级功能)进行补丁过滤。该方法可在20个超声心动图容积中提供良好的性能准确性,并且与最新文献中提出的最新分割方法相比具有优势。

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