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首页> 外文期刊>Computerized Medical Imaging and Graphics: The Official Jounal of the Computerized Medical Imaging Society >Graph cut-based method for segmenting the left ventricle from MRI or echocardiographic images
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Graph cut-based method for segmenting the left ventricle from MRI or echocardiographic images

机译:从MRI或超声心动图分割左心室的基于曲线切割方法

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In this paper, we present a fast and interactive graph cut method for 3D segmentation of the endocardial wall of the left ventricle (LV) adapted to work on two of the most widely used modalities: magnetic resonance imaging (MRI) and echocardiography. Our method accounts for the fundamentally different nature of both modalities: 3D echocardiographic images have a low contrast, a poor signal-to-noise ratio and frequent signal drop, while MR images are more detailed but also cluttered and contain highly anisotropic voxels. The main characteristic of our method is to work in a 3D Bezier coordinate system instead of the original Euclidean space. This comes with several advantages, including an implicit shape prior and a result guarantied not to have any holes in it. The proposed method is made of 4 steps. First, a 3D sampling of the LV cavity is made based on a Bezier coordinate system. This allows to warp the input 3D image to a Bezier space in which a plane corresponds to an anatomically plausible 3D Euclidean bullet shape. Second, a 3D graph is built and an energy term (which is based on the image gradient and a 3D probability map) is assigned to each edge of the graph, some of which being given an infinite energy to ensure the resulting 3D structure passes through key anatomical points. Third, a max-flow min-cut procedure is executed on the energy graph to delineate the endocardial surface. And fourth, the resulting surface is projected back to the Euclidean space where a post-processing convex hull algorithm is applied on every short axis slice to remove local concavities. Results obtained on two datasets reveal that our method takes between 2 and 5 s to segment a 3D volume, it has better results overall than most state-of-the-art methods on the CETUS echocardiographic dataset and is statistically as good as a human operator on MR images. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在本文中,我们提出了一种快速互动的图形切割方法,用于左心室(LV)内膜壁的3D分割,适用于两种最广泛使用的模态的工作:磁共振成像(MRI)和超声心动图。我们的方法考虑了两种方式的基本不同性质:3D超声心动图图像具有低对比度,信噪比差和频繁信号下降,而MR图像更详细但也含有高度各向异性的体素并含有高度各向异性的体素。我们方法的主要特征是在3D Bezier坐标系中工作而不是原始的欧几里德空间。这具有多种优点,包括之前的隐式形状,结果保证不具有任何漏洞。所提出的方法由4个步骤制成。首先,基于贝塞尔坐标系制造LV腔的3D采样。这允许将输入的3D图像经横发到贝塞尔空间,其中平面对应于解剖学上可粘合的3D欧几里德子弹形状。其次,构建了3D图,并且将节能(基于图像梯度和3D概率图)分配给图形的每个边缘,其中一些是给出无限能量以确保所产生的3D结构通过关键解剖点。第三,在能量图上执行最大流动的MIN切割过程以描绘心内膜表面。第四,将所得表面投影回欧几里德空间,其中在每个短轴切片上施加后处理凸船算法以去除本地凹陷。在两个数据集上获得的结果表明,我们的方法需要2到5秒以分段为3D卷,它比Cetus超声心动图数据集上的大多数最先进的方法都具有更好的结果,并且与人类运营商具有统计数据在MR图像上。 (c)2017 Elsevier Ltd.保留所有权利。

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