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首页> 外文期刊>Neural computing & applications >Classification of calcified regions in atherosclerotic lesions of the carotid artery in computed tomography angiography images
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Classification of calcified regions in atherosclerotic lesions of the carotid artery in computed tomography angiography images

机译:计算机断层血管造影图像颈动脉动脉动脉粥样硬化病变中钙化区分类

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摘要

The identification of atherosclerotic plaque components, extraction and analysis of their morphology represent an important role towards the prediction of cardiovascular events. In this article, the classification of regions representing calcified components in computed tomography angiography (CTA) images of the carotid artery is tackled. The proposed classification model has two main steps: the classification per pixel and the classification per region. Features extracted from each pixel inside the carotid artery are submitted to four classifiers in order to determine the correct class, i.e. calcification or non-calcification. Then, geometrical and intensity features extracted from each candidate region resulting from the pixel classification step are submitted to the classification per region in order to determine the correct regions of calcified components. In order to evaluate the classification accuracy, the results of the proposed classification model were compared against ground truths of calcifications obtained from micro-computed tomography images of excised atherosclerotic plaques that were registered with in vivo CTA images. The average values of the Spearman correlation coefficient obtained by the linear discriminant classifier were higher than 0.80 for the relative volume of the calcified components. Moreover, the average values of the absolute error between the relative volumes of the classified calcium regions and the ones calculated from the corresponding ground truths were lower than 3%. The new classification model seems to be adequate as an auxiliary diagnostic tool for identifying calcifications and allowing their morphology assessment.
机译:其形态的动脉粥样硬化斑块组分,提取和分析代表了对预测心血管事件的重要作用。在本文中,解决了代表颈动脉的计算断层摄影血管造影(CTA)图像中的钙化组分的区域的分类。所提出的分类模型具有两个主要步骤:每个像素分类和每个区域的分类。从颈动脉内部的每个像素提取的特征被提交到四个分类器,以确定正确的类,即钙化或非钙化。然后,从像素分类步骤产生的每个候选区域提取的几何和强度特征被提交到每个区域的分类,以便确定钙化组件的正确区域。为了评估分类准确性,比较了所提出的分类模型的结果与从在体内CTA图像中注册的切除的动脉粥样硬化斑块的微计算断层植被图像获得的钙化的原始真理。对于钙化组分的相对体积,通过线性判别分类器获得的SPEARMAN相关系数的平均值高于0.80。此外,分类钙区域的相对体积与来自相应地面真理计算的相对体积之间的绝对误差的平均值低于3%。新的分类模型似乎充足为辅助诊断工具,用于识别钙化并允许其形态评估。

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