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首页> 外文期刊>Technology and health care: official journal of the European Society for Engineering and Medicine >A hybrid plaque characterization method using intravascular ultrasound images.
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A hybrid plaque characterization method using intravascular ultrasound images.

机译:使用血管内超声图像的混合斑块表征方法。

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摘要

Intravascular ultrasound (IVUS) is an invasive imaging modality that provides high resolution cross-sectional images permitting detailed evaluation of the lumen, outer vessel wall and plaque morphology and evaluation of its composition. Over the last years several methodologies have been proposed which allow automated processing of the IVUS data and reliable segmentation of the regions of interest or characterization of the type of the plaque.In this paper we present a novel methodology for the automated identification of different plaque components in grayscale IVUS images.The proposed method is based on a hybrid approach that incorporates both image processing techniques and classification algorithms and allows classification of the plaque into three different categories: Hard Calcified, Hard-Non Calcified and Soft plaque. Annotations by two experts on 8 IVUS examinations were used to train and test our method.The combination of an automatic thresholding technique and active contours coupled with a Random Forest classifier provided reliable results with an overall classification accuracy of 86.14%.The proposed method can accurately detect the plaque using grayscale IVUS images and can be used to assess plaque composition for both clinical and research purposes.
机译:血管内超声(IVUS)是一种侵入性成像方式,可提供高分辨率的横截面图像,允许对腔,外血管壁和斑块形态进行详细评估,并对其成分进行评估。在过去的几年中,已经提出了几种方法,这些方法可以对IVUS数据进行自动处理,并对感兴趣区域进行可靠的分割或对斑块的类型进行表征。在本文中,我们提出了一种新颖的方法,可以自动识别不同的斑块成分所提出的方法基于一种混合方法,该方法结合了图像处理技术和分类算法,并且可以将斑块分为三类:硬钙化,硬非钙化和软斑。我们使用了两位专家对8种IVUS考试的注释来训练和测试我们的方法,将自动阈值技术和活动轮廓与随机森林分类器结合使用可提供可靠的结果,总体分类准确度为86.14%,该方法可以准确使用灰度级IVUS图像检测斑块,可用于评估斑块成分,以用于临床和研究目的。

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