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Fuzzy-based automatic detection of tags and ventricular contours for wall motion analysis of cardiac magnetic resonance images

机译:基于模糊的自动检测心脏磁共振图像壁运动分析的标签和心室轮廓

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We investigate the potential of a hybrid approach based on fuzzy set theory and image processing techniques to automatically detect tags and left ventricle contours in SPAMM cardiac images. Properties of the images such as brightness, contrast, and edges are extracted using conventional image processing techniques. Linguistic descriptions derived from "a priori" knowledge on tags and left ventricle contours are expressed through fuzzy membership functions, which fuzzify the feature space. The application of appropriate fuzzy relations and operators enables the classification of individual pixels of the images into four groups: tags, non-tags, myocardium and non-myocardium. Further feature and knowledge fuzzification allow the detection of the pixels belonging to tags, epicardium and endocardium. Snakes are employed to provide smooth and continuum curves.
机译:我们研究了基于模糊集理论和图像处理技术的混合方法的潜力,以自动检测垃圾心脏图像中的标签和左心室轮廓。使用传统的图像处理技术提取诸如亮度,对比度和边缘的图像的性质。通过模糊的成员资格函数表示从标签和左心室轮廓上的“先验”知识的语言描述,它通过模糊成员资格函数来表达,该函数模糊了特征空间。适当的模糊关系和运营商的应用使得将图像的单个像素分类为四组:标签,非标签,心肌和非心肌。进一步的特征和知识模糊允许检测属于标签,表皮和内膜的像素。蛇被用来提供平滑和连续的曲线。

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