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Atherosclerotic plaque characterization using geometrical features from virtual histology intravascular ultrasound images

机译:利用虚拟组织学血管内超声图像的几何特征表征动脉粥样斑块

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Intravascular ultrasound imaging (IVUS) is a diagnostic imaging technique which provides two-dimensional (2-D) tomographic views of the coronary lumen and outer vessel wall. Virtual Histology (VH) provides a color-coded plaque characterization which employs the radiofrequency (RF) data from the catheter. The aim of this study is to extract a set of features from IVUS images and to use them in the detection of various plaque components. Intensity features, texture based features and two novel geometrical features are employed in a Random Forests classification algorithm. The first geometrical feature describes the relative position of each pixel from the media-adventitia border and the second the relative position from the media-adventitia and the lumen border. The plaque components are classified into four plaque types: Dense Calcium, Fibrotic Tissue, Fibro-Fatty Tissue and Necrotic Core. We use 300 IVUS frames acquired from Virtual Histology exams from 10 patients to evaluate our methodology. The two geometrical features improved the atherosclerotic plaque classification in terms of overall accuracy, sensitivity and specificity. Using the geometrical features an overall classification accuracy 84.45% is reported.
机译:血管内超声成像(IVUS)是一种诊断性成像技术,可提供冠状腔和血管外壁的二维(2-D)断层图像。虚拟组织学(VH)提供了颜色编码的斑块特征,该特征采用了来自导管的射频(RF)数据。这项研究的目的是从IVUS图像中提取一组特征,并将其用于检测各种斑块成分。在随机森林分类算法中采用了强度特征,基于纹理的特征和两个新颖的几何特征。第一个几何特征描述了每个像素相对于中外膜边界的相对位置,第二个几何特征描述了相对于中膜外膜和管腔边界的相对位置。斑块成分分为四种斑块类型:致密钙,纤维化组织,纤维脂肪组织和坏死核心。我们使用从10例患者的虚拟组织学检查中获得的300个IVUS镜架来评估我们的方法。在总体准确性,敏感性和特异性方面,这两个几何特征改善了动脉粥样硬化斑块的分类。使用几何特征,总分类精度为84.45%。

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