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基于两相自适应区域生长算法的虚拟血管内镜自动导航路径生成

Automatic navigation path generation based on two-phase adaptive region-growing algorithm for virtual angioscopy.

作者信息

Kim Do-Yeon, Chung Sung-Mo, Park Jong-Won

机构信息

Department of Information and Communication Engineering, Chungnam National University, 220 Gung-Dong, Yuseong-Gu, Taejon 305-764, Republic of Korea.

出版信息

Med Eng Phys. 2006 May;28(4):339-47. doi: 10.1016/j.medengphy.2005.07.011. Epub 2005 Aug 19.

Abstract

In this paper, we propose a fast and automated navigation path generation algorithm to visualize inside of carotid artery using MR angiography images. The carotid artery is one of the body regions not accessible by real optical probe but can be visualized with virtual endoscopy. By applying two-phase adaptive region-growing algorithm, the carotid artery segmentation is started at the initial seed, which is located on the initially thresholded binary image. This segmentation algorithm automatically detects the branch position with stack feature. Combining with a priori knowledge of anatomic structure of carotid artery, the detected branch position is used to separate the carotid artery into internal carotid artery and external carotid artery. A fly-through path is determined to automatically move the virtual camera based on the intersecting coordinates of two bisectors on the circumscribed quadrangle of segmented carotid artery. In consideration of the interactive rendering speed and the usability of standard graphic hardware, endoscopic view of carotid artery is generated by using surface rendering algorithm with perspective projection method. In addition, the endoscopic view is provided with ray casting algorithm for off-line navigation of carotid artery. Experiments have been conducted on both mathematical phantom and clinical data sets. This algorithm is more effective than key-framing and topological thinning method in terms of automated features and computing time. This algorithm is also applicable to generate the centerline of renal artery, coronary artery, and airway tree which has tree-like cylinder shape of organ structures in the medical imagery.

摘要

在本文中,我们提出了一种快速自动的导航路径生成算法,用于使用磁共振血管造影图像可视化颈动脉内部。颈动脉是实际光学探头无法触及的身体部位之一,但可以通过虚拟内窥镜进行可视化。通过应用两相自适应区域生长算法,颈动脉分割从位于初始阈值化二值图像上的初始种子开始。该分割算法利用堆栈特征自动检测分支位置。结合颈动脉解剖结构的先验知识,将检测到的分支位置用于将颈动脉分为颈内动脉和颈外动脉。基于分割后的颈动脉外接四边形上两条平分线的相交坐标,确定一条飞越路径以自动移动虚拟相机。考虑到交互式渲染速度和标准图形硬件的可用性,使用带有透视投影方法的表面渲染算法生成颈动脉的内窥镜视图。此外,为颈动脉的离线导航提供了光线投射算法的内窥镜视图。已在数学模型和临床数据集上进行了实验。在自动特征和计算时间方面,该算法比关键帧和拓扑细化方法更有效。该算法也适用于生成肾动脉、冠状动脉和气道树的中心线,这些在医学图像中具有树状圆柱形状的器官结构。

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