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使用动脉粥样硬化斑块特征的颈动脉超声症状学:一类动脉粥样硬化系统。

Carotid ultrasound symptomatology using atherosclerotic plaque characterization: a class of Atheromatic systems.

作者信息

Acharya U Rajendra, S Vinitha Sree, Molinari Filippo, Saba Luca, Nicolaides Andrew, Shafique Shoaib, Suri Jasjit S

机构信息

Department of Electronics and Computer Engineering, Ngee Ann Polytechnic, Singapore.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2012;2012:3199-202. doi: 10.1109/EMBC.2012.6346645.

Abstract

In this paper, we present a Computer Aided Diagnosis (CAD) based technique (Atheromatic system) for classification of carotid plaques in B-mode ultrasound images into symptomatic or asymptomatic classes. This system, called Atheromatic, has two steps: (i) feature extraction using a combination of Discrete Wavelet Transform (DWT) and averaging algorithms and (ii) classification using Support Vector Machine (SVM) classifier for automated decision making. The CAD system was built and tested using a database consisting of 150 asymptomatic and 196 symptomatic plaque regions of interests which were manually segmented. The ground truth of each plaque was determined based on the presence or absence of symptoms. Three-fold cross-validation protocol was adapted for developing and testing the classifiers. The SVM classifier with a polynomial kernel of order 2 recorded the highest classification accuracy of 83.7%. In the clinical scenario, such a technique, after much more validation, can be used as an adjunct tool to aid physicians by giving a second opinion on the nature of the plaque (symptomatic/asymptomatic) which would help in the more confident determination of the subsequent treatment regime for the patient.

摘要

在本文中,我们提出了一种基于计算机辅助诊断(CAD)的技术(动脉粥样硬化系统),用于将B模式超声图像中的颈动脉斑块分类为有症状或无症状类别。这个名为动脉粥样硬化的系统有两个步骤:(i)使用离散小波变换(DWT)和平均算法相结合的特征提取,以及(ii)使用支持向量机(SVM)分类器进行分类以实现自动决策。该CAD系统是使用一个数据库构建和测试的,该数据库由150个无症状和196个有症状的斑块感兴趣区域组成,这些区域是手动分割的。每个斑块的真实情况是根据是否存在症状来确定的。采用三重交叉验证协议来开发和测试分类器。具有二阶多项式核的SVM分类器记录的最高分类准确率为83.7%。在临床场景中,经过更多验证后,这样的技术可以用作辅助工具,通过对斑块的性质(有症状/无症状)给出第二种意见来帮助医生,这将有助于更自信地确定患者的后续治疗方案。

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