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首页> 外文期刊>Computerized Medical Imaging and Graphics: The Official Jounal of the Computerized Medical Imaging Society >Lumen and media-adventitia border detection in IVUS images using texture enhanced deformable model
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Lumen and media-adventitia border detection in IVUS images using texture enhanced deformable model

机译:使用纹理增强可变形模型的IVUS图像中的腔和媒体外膜边框检测

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摘要

Lumen and media-adventitia (MA) borders in intravascular ultrasound (IVUS) images are critical for assessing the dimensions of vascular structures and providing plaque information in the diagnosis and navigation of vascular interventions. However, manual delineation of the lumen and MA borders is an intricate and time-consuming process. In this paper, a texture-enhanced deformable model (TEDM) is proposed to accurately detect these borders by incorporating texture information with the morphological factors of deformable model. An ensemble support vector machine classifier is used to classify IVUS pixels presented by texture features into different tissue types. The image regionalization maps of different tissue types are further used for texture enhancement modules in the TEDM. The proposed TEDM method has been tested on 1500 images from 15 clinical IVUS datasets by comparing with the manual delineations. Evaluation results demonstrate that our method can accurately detect lumen and MA surfaces with small surface distance errors of 0.17 and 0.19 mm, respectively. Accurate segmentation results provide 2D measurements of MA/lumen areas and 3D vessel visualizations for vascular interventions.
机译:腔内超声(IVUS)图像中的腔和媒体外来(MA)边界对于评估血管结构的尺寸并提供血管干预的诊断和导航中的斑块信息。但是,手动描绘腔和MA边界是复杂和耗时的过程。在本文中,提出了一种纹理增强的可变形模型(TEDM)来精确地通过将纹理信息与可变形模型的形态因素纳入纹理信息来精确地检测这些边界。合并支持向量机分类器用于将纹理特征呈现为不同的组织类型的IVUS像素。不同组织类型的图像区域化映射进一步用于TEDM中的纹理增强模块。通过与手动描绘相比,从15个临床IVUS数据集中,已经在1500张图像中测试了所提出的TEDM方法。评估结果表明,我们的方法可以分别准确地检测小表面距离误差为0.17和0.19mm的腔和MA表面。准确的分割结果提供了2D测量MA /腔区域和用于血管干预的3D血管可视化。

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