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使用可变形模型对实时三维超声心动图数据进行配准辅助分割。

Registration-assisted segmentation of real-time 3-D echocardiographic data using deformable models.

作者信息

Zagrodsky Vladimir, Walimbe Vivek, Castro-Pareja Carlos R, Qin Jian Xin, Song Jong-Min, Shekhar Raj

机构信息

Department of Biomedical Engineering, Lerner Research Institute, The Cleveland Clinic Foundation, Cleveland, OH 44195, USA.

出版信息

IEEE Trans Med Imaging. 2005 Sep;24(9):1089-99. doi: 10.1109/TMI.2005.852057.

DOI:10.1109/TMI.2005.852057
PMID:16156348
Abstract

Real-time three-dimensional (3-D) echocardiography is a new imaging modality that presents the unique opportunity to visualize the complex 3-D shape and motion of the left ventricle (LV) in vivo and to measure the associated global and local function parameters. To take advantage of this opportunity in routine clinical practice, automatic segmentation of the LV in the 3-D echocardiographic data, usually hundreds of megabytes large, is essential. We report a new segmentation algorithm for this task. Our algorithm has two distinct stages, initialization of a deformable model and its refinement, which are connected by a dual "voxel + wiremesh" template. In the first stage, mutual-information-based registration of the voxel template with the image to be segmented helps initialize the wiremesh template. In the second stage, the wiremesh is refined iteratively under the influence of external and internal forces. The internal forces have been customized to preserve the nonsymmetric shape of the wiremesh template in the absence of external forces, defined using the gradient vector flow approach. The algorithm was validated against expert-defined segmentation and demonstrated acceptable accuracy. Our segmentation algorithm is fully automatic and has the potential to be used clinically together with real-time 3-D echocardiography for improved cardiovascular disease diagnosis.

摘要

实时三维(3-D)超声心动图是一种新的成像方式,它提供了独特的机会,可以在体内可视化左心室(LV)的复杂三维形状和运动,并测量相关的整体和局部功能参数。为了在常规临床实践中利用这一机会,对通常数百兆字节大的三维超声心动图数据中的左心室进行自动分割至关重要。我们报告了一种用于此任务的新分割算法。我们的算法有两个不同的阶段,即可变形模型的初始化及其细化,这两个阶段通过双“体素+线框”模板相连。在第一阶段,基于互信息的体素模板与待分割图像的配准有助于初始化线框模板。在第二阶段,线框在外部和内部力的影响下进行迭代细化。内部力经过定制,以便在没有外力的情况下保持线框模板的非对称形状,使用梯度向量流方法定义。该算法经与专家定义的分割结果验证,显示出可接受的准确性。我们的分割算法是完全自动的,有潜力与实时三维超声心动图一起用于临床,以改善心血管疾病的诊断。

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