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Processing segmentation and visualization of pre- and post-stent coronary arteries using intravascular ultrasound

机译:使用血管内超声处理支架前支架冠状动脉的分割和可视化

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Intra-vascular ultrasound (IVUS) has significant potential for providing new information about the structure and condition of the coronary arteries. However, these image datasets are inherently noisy and characterized by frequent drop-outs and shadowing, considerably constraining their use for quantitative evaluation of coronary artery integrity and stent augmentation. A feasibility study was conducted to test the effectiveness of a software toolkit for processing, segmenting, and visualizing pre- and post-stent IVUS datasets, as a precursor to detailed quantitative evaluation of IVUS with regard to characterization of coronary luminal wall properties. Frame averaging, histogram processing, and anisotropic diffusion were used to reduce speckle noise and compensate for image dropout and shadowing. A region of interest (ROI) analysis was conducted to determine the effectiveness of the image processing. Preliminary results suggest that the image processing steps are effective at increasing the contrast to speckle ratio. In addition, contrast between the arterial wall and lumen was improved, producing an edge enhancement effect. Image registration was used to align images within a volume (i.e. 2-D registration) and between volumes (i.e. 3-D registration). A voxel matching method was used for the 2-D registration and a surface matching method was used for 3-D registration. A morphological connect method for segmentation was used to extract large structures in the data. A new edge-based algorithm was developed to segment the data in regions where the other method failed. Volume rendering methods were used to visualize the data. These preliminary visualizations of processed, segmented and registered IVUS datasets illustrated encouraging potential for further quantitative analysis of coronary artery morphology and pathology.
机译:血管内超声(IVUS)具有提供有关冠状动脉结构和状况的新信息的显着潜力。然而,这些图像数据集本质上噪声,其特征在于频繁的辍学和阴影,显着约束它们用于冠状动脉完整性和支架增强的定量评估。进行可行性研究以测试软件工具包的有效性,用于处理,分割和可视化前支架和后支柱IVUS数据集,作为对IVUS关于冠状动脉腔特性表征的详细定量评估IVU的前驱体。帧平均,直方图处理和各向异性扩散用于减少斑点噪声并补偿图像丢失和阴影。进行了一个感兴趣区域(ROI)分析以确定图像处理的有效性。初步结果表明图像处理步骤有效地增加与散斑比对比度。此外,动脉壁和腔之间的对比度得到改善,产生了边缘增强效果。图像配准用于对准体积内的图像(即2-D注册)和卷之间(即3-D注册)。用于2-D注册的体素匹配方法,使用表面匹配方法3d注册。用于分割的形态连接方法用于提取数据中的大结构。开发了一种新的基于边缘的算法,用于在其他方法失败的区域中分段数据。卷渲染方法用于可视化数据。处理,分段和注册IVUS数据集的这些初步可视化示出了用于冠状动脉形态和病理学的进一步定量分析令人鼓舞的潜力。

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