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A Comparative Study of Morphological and Other Texture Features for the Characterization of Atherosclerotic Carotid Plaques

机译:形态学和其他纹理特征的比较研究表征动脉粥样硬化的颈动脉斑块

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The extraction of features characterizing the structure of atherosclerotic carotid plaques, obtained by high-resolution ultrasound imaging is important for the correct plaque classification and the estimation of the risk of stroke. In this study morphological features were extracted and compared with the well-known texture features spatial gray level dependence matrices (SGLDM), gray level difference statistics (GLDS) and the first order statistics (FOS) for the classification of 330 carotid plaques. For the classification the neural self-organizing map (SOM) classifier and the statistical k-nearest neighbor (KNN) classifier were used. The results showed that morphological and other texture features are comparable, with the morphological and the GLDS feature sets to perform slightly better than the SGLDM and the FOS features. The highest diagnostic yield was achieved with the GLDS feature set and it was about 70%.
机译:通过高分辨率超声成像获得的表征动脉粥样硬化颈动脉斑块结构特征的提取对于正确的斑块分类和中风风险的估计非常重要。在这项研究中,提取形态学特征并将其与著名的纹理特征空间灰度依赖矩阵(SGLDM),灰度差统计量(GLDS)和一阶统计量(FOS)进行比较,以对330个颈动脉斑块进行分类。对于分类,使用了神经自组织图(SOM)分类器和统计k最近邻(KNN)分类器。结果表明,形态和其他纹理特征是可比的,其形态和GLDS特征集的性能略优于SGLDM和FOS特征。 GLDS功能集可实现最高的诊断率,约为70%。

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