心血管疾病计算机辅助诊断中动脉粥样硬化斑块的回声特征和质地特征

Adriana Molder, C. Molder, I. Vizitiu, S. Dumitrescu
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引用次数: 0

摘要

图像处理技术的发展,如经典特征提取、神经网络、人工智能和深度学习,使医学图像的增强、分析、识别和分类成为可能。颈动脉粥样斑块的存在与各种心血管疾病的风险增加有关,并且这种风险随着斑块的增长而增加。此外,斑块的形态结构与整体心血管风险密切相关。无论是何种类型的医学影像,计算机辅助诊断(CAD)已成为医学影像与诊断领域的主要研究课题之一。本文的目的是获得一种全自动的动脉粥样硬化斑块表征程序,以预防中风。我们的方法基于动脉粥样斑块的两个形态学特征:基于白色百分比的回声性测量和基于五种哈拉里克纹理特征的均匀性量化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of Atheroma Plaques Echogenicity and Texture for Computer- Aided Diagnosis in Cardiovascular Diseases
Developments of image processing techniques such as classical feature extraction, neural networks, artificial intelligence and deep learning have made possible enhancement, analysis, recognition and classification of medical imaging. The presence of atheroma plaques in the carotid artery is associated with an increased risk of all forms of cardiovascular disease and this risk increases with plaque growth. Moreover, the morphological structure of the plaque is closely related to the overall cardiovascular risk. Regardless of the type of medical imaging computer-aided diagnosis (CAD) has become one of the major research subjects in medical imaging and diagnostic. The purpose of this article is to obtain a fully automatic procedure for atheroma plaques characterization in order to prevent stroke. Our approach is based on two morphological characteristics of atheroma plaques: the measurement of echogenicity based on percentage of white and the quantification of homogeneity based on five Haralick texture features.
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