首页> 外文会议>Visualization, Image-Guided Procedures, and Display; Progress in Biomedical Optics and Imaging; vol.7,no.27 >Image-based Rendering Method for Mapping Endoscopic Video onto CT-based Endoluminal Views
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Image-based Rendering Method for Mapping Endoscopic Video onto CT-based Endoluminal Views

机译:用于将内窥镜视频映射到基于CT的腔内视图的基于图像的渲染方法

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One of the indicators of early lung cancer is a color change in airway mucosa. Bronchoscopy of the major airways can provide high-resolution color video of the airway tree's mucosal surfaces. In addition, 3D MDCT chest images provide 3D structural information of the airways. Unfortunately, the bronchoscopic video contains no explicit 3D structural and position information, and the 3D MDCT data captures no color or textural information of the mucosa. A fusion of the topographical information from the 3D CT data and the color information from the bronchoscopic video, however, enables realistic 3D visualization, navigation, localization, and quantitative color-topographic analysis of the airways. This paper presents a method for topographic airway-mucosal surface mapping from bronchoscopic video onto 3D MDCT endoluminal views. The method uses registered video images and CT-based virtual endoscopic renderings of the airways. The visibility and depth data are also generated by the renderings. Uniform sampling and over-scanning of the visible triangles are done before they are packed into a texture space. The texels are then re-projected onto video images and assigned color values based on depth and illumination data obtained from renderings. The texture map is loaded into the rendering engine to enable real-time navigation through the combined 3D CT surface and bronchoscopic video data. Tests were performed on pre-recorded bronchoscopy patient video and associated 3D MDCT scans. Results show that we can effectively accomplish mapping over a continuous sequence of airway images spanning several generations of airways.
机译:早期肺癌的指标之一是气道粘膜的颜色变化。主要气道的支气管镜检查可提供气道树粘膜表面的高分辨率彩色视频。另外,3D MDCT胸部图像可提供气道的3D结构信息。不幸的是,支气管镜视频不包含任何明确的3D结构和位置信息,并且3D MDCT数据无法捕获粘膜的颜色或纹理信息。但是,将3D CT数据中的地形信息与支气管镜视频中的颜色信息进行融合,可以实现对气道的逼真的3D可视化,导航,定位和定量的颜色地形分析。本文提出了一种从支气管镜视频到3D MDCT腔内视图的气道-粘膜地形图绘制方法。该方法使用注册的视频图像和基于气道的基于CT的虚拟内窥镜渲染。可见性和深度数据也由渲染生成。对可见三角形进行均匀采样和过扫描,然后再将其打包到纹理空间中。然后,基于从渲染获得的深度和照明数据,将纹理像素重新投影到视频图像上并分配颜色值。将纹理贴图加载到渲染引擎中,以通过组合的3D CT表面和支气管镜视频数据进行实时导航。测试是对预先录制的支气管镜检查患者视频和相关的3D MDCT扫描进行的。结果表明,我们可以有效地完成跨越几代气道的连续序列气道图像的映射。

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