首页> 外文会议>SPIE Conference on Image processing >CARES: Completely Automated Robust Edge Snapper for CarotidUltrasound IMT measurement on a Multi-Institutional Database of300 Images: a Two-Stage System Combining An Intensity-BasedFeature Approach With First Order Absolute Moments
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CARES: Completely Automated Robust Edge Snapper for CarotidUltrasound IMT measurement on a Multi-Institutional Database of300 Images: a Two-Stage System Combining An Intensity-BasedFeature Approach With First Order Absolute Moments

机译:关心:全自动自动化的强大边缘捕捉器,用于300图像的多机构数据库中的CarotIvultraSound IMT测量:双级系统,将基于强度为本的方法与一阶绝对矩相结合

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The carotid intima-media thickness (IMT) is the most used marker for the progression of atherosclerosis and onset of the cardiovascular diseases. Computer-aided measurements improve accuracy, but usually require user interaction. In this paper we characterized a new and completely automated technique for carotid segmentation and IMT measurement based on the merits of two previously developed techniques. We used an integrated approach of intelligent image feature extraction and line fitting for automatically locating the carotid artery in the image frame, followed by wall interfaces extraction based on Gaussian edge operator. We called our system - CARES. We validated the CARES on a multi-institutional database of 300 carotid ultrasound images. IMT measurement bias was 0.032 ± 0.141 mm, better than other automated techniques and comparable to that of user-driven methodologies. Our novel approach of CARES processed 96% of the images leading to the figure of merit to be 95.7%. CARES ensured complete automation and high accuracy in IMT measurement; hence it could be a suitable clinical tool for processing of large datasets in multicenter studies involving atherosclerosis.
机译:颈动脉内膜介质厚度(IMT)是用于动脉粥样硬化和心血管疾病发作的最多的标记。计算机辅助测量提高准确性,但通常需要用户交互。在本文中,我们以两种以前显影技术的优点为颈动脉分割和IMT测量的新的和完全自动化的技术。我们利用智能图像特征提取和线配件的综合方法,用于自动定位图像框架中的颈动脉,然后基于高斯边缘操作员提取壁界面。我们叫我们的系统 - 关心。我们验证了300个颈动脉超声图像的多机构数据库的关心。 IMT测量偏置为0.032±0.141 mm,比其他自动化技术更好,与用户驱动的方法相当。我们的新颖的关怀方法处理了96%的图像,导致绩效的数量为95.7%。关心确保完整的自动化和IMT测量的高精度;因此,它可能是一种合适的临床工具,用于在涉及动脉粥样硬化的多中心研究中加工大型数据集。

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