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首页> 外文期刊>IEEE Transactions on Medical Imaging >Fast and Fully Automatic Left Ventricular Segmentation and Tracking in Echocardiography Using Shape-Based B-Spline Explicit Active Surfaces
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Fast and Fully Automatic Left Ventricular Segmentation and Tracking in Echocardiography Using Shape-Based B-Spline Explicit Active Surfaces

机译:使用基于形状的B样条显式主动曲面在超声心动图中进行快速全自动左心室分割和跟踪

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摘要

Cardiac volume/function assessment remains a critical step in daily cardiology, and 3-D ultrasound plays an increasingly important role. Fully automatic left ventricular segmentation is, however, a challenging task due to the artifacts and low contrast-to-noise ratio of ultrasound imaging. In this paper, a fast and fully automatic framework for the full-cycle endocardial left ventricle segmentation is proposed. This approach couples the advantages of the B-spline explicit active surfaces framework, a purely image information approach, to those of statistical shape models to give prior information about the expected shape for an accurate segmentation. The segmentation is propagated throughout the heart cycle using a localized anatomical affine optical flow. It is shown that this approach not only outperforms other state-of-the-art methods in terms of distance metrics with a mean average distances of 1.81±0.59 and 1.98±0.66 mm at end-diastole and end-systole, respectively, but is computationally efficient (in average 11 s per 4-D image) and fully automatic.
机译:心脏容量/功能评估仍然是日常心脏病学中的关键步骤,而3D超声起着越来越重要的作用。然而,由于超声成像的伪影和低的对比度-噪声比,全自动左心室分割是一项艰巨的任务。本文提出了一种快速,全自动的全周期心内膜左心室分割框架。这种方法将纯图像信息方法B样条显式有效曲面框架的优点与统计形状模型的优点相结合,以提供有关预期形状的先验信息以进行准确的分割。使用局部解剖仿射光流将分割传播到整个心动周期。结果表明,该方法不仅在舒张末期和收缩末期的平均距离分别为1.81±0.59和1.98±0.66 mm的距离度量方面优于其他最新方法,而且计算效率高(每张4-D图像平均11 s)并且是全自动的。

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