Using morphological and clustering analysis for left ventricle detection in MSCT cardiac images

J. Clemente, A. Bravo, R. Medina
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引用次数: 2

Abstract

In this paper, an unsupervised approach based on non-linear filtering and region growing techniques to obtain the endocardial surface is proposed. The filtering stage is performed using mathematical morphology operators in order to improve the left ventricle cavity information in multi slice computerized tomography images. A seed point located inside the cardiac cavity is used as input for the region growing algorithm. This seed point is propagated along the image sequence to obtain the left ventricle surfaces for all instants of the cardiac cycle. The method is validated by comparing the estimated surface with respect to left ventricle shapes drawn by a cardiologist. The average error obtained was 1.38 mm.
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利用形态学和聚类分析在MSCT心脏图像中检测左心室
本文提出了一种基于非线性滤波和区域生长技术的无监督心内膜表面提取方法。滤波阶段采用数学形态学算子进行,以改善多层计算机断层扫描图像中的左心室腔信息。区域生长算法使用位于心脏腔内的种子点作为输入。这个种子点沿着图像序列传播,以获得心周期所有瞬间的左心室表面。通过将估计的表面与心脏病专家绘制的左心室形状进行比较,验证了该方法。得到的平均误差为1.38 mm。
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