首页> 外文会议>Conference on Medical Imaging 2008: Visualization, Image-Guided Procedures, and Modeling; 20080217-19; San Diego,CA(US) >High-quality anatomical structure enhancement for cardiac image dynamic volume rendering
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High-quality anatomical structure enhancement for cardiac image dynamic volume rendering

机译:用于心脏图像动态体积渲染的高质量解剖结构增强

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Dynamic volume rendering of the beating heart is an important element in cardiac disease diagnosis and therapy planning, providing the clinician with insight into the internal cardiac structure and functional behavior. Most clinical applications tend to focus upon a particular set of organ structures, and in the case of cardiac imaging, it would be helpful to embed anatomical features into the dynamic volume that are of particular importance to an intervention. A uniform transfer function (TF), such as is generally employed in volume rendering, cannot effectively isolate such structures because of the lack of spatial information and the small intensity differences between adjacent tissues. Explicit segmentation is a powerful way to approach this problem, which usually yields a single binary mask volume (MV), where a unit value in a voxel within the MV acts as a tag label representing the anatomical structure of interest (ASOI). These labels are used to determine the TF employed to adjust the ASOI display. Traditional approaches for rendering such segmented volumetric datasets usually deliver unsatisfactory results, such as noninteractive rendering speed, low image quality, intermixing artifacts along the rendered subvolume boundaries, and speckle noise. In this paper, we introduce a new "color coding" approach, based on the graphics processing unit (GPU) accelerated raycasting algorithm and a pre-integrated voxel classification method, to address this problem. The mask tag labels derived from segmentation are first smoothed with a Gaussian filter, and multiple TFs are designed for each of the MVs and the source cardiac volume respectively, mapping the voxel's intensity to color and opacity at each sampling point along the casting ray. The resultant values are composited together using a boundary color adjustment technique, which acts as "coding" the segmented anatomical structure information into the rendered source volume of the beating heart. Our algorithm produces high image quality in real-time without introducing intermixing artifacts in the rendered 4-dimensional (4D) cardiac volumes.
机译:动态跳动心脏的体积是心脏疾病诊断和治疗计划中的重要元素,使临床医生可以深入了解心脏内部结构和功能行为。大多数临床应用倾向于集中在一组特定的器官结构上,在心脏成像的情况下,将解剖特征嵌入对干预特别重要的动态体积将是有帮助的。诸如通常在体绘制中使用的统一传递函数(TF)由于缺乏空间信息并且相邻组织之间的强度差较小,因此无法有效地隔离此类结构。显式分割是解决此问题的有力方法,通常会产生单个二进制掩码体积(MV),其中MV内体素中的单位值充当表示目标解剖结构(ASOI)的标签标签。这些标签用于确定用于调整ASOI显示的TF。用于渲染此类分段体积数据集的传统方法通常无法提供令人满意的结果,例如非交互式渲染速度,低图像质量,沿渲染子体积边界的混合伪像以及斑点噪声。在本文中,我们引入了一种新的“颜色编码”方法,该方法基于图形处理单元(GPU)加速光线投射算法和预集成体素分类方法,以解决此问题。首先使用高斯滤波器对源自分段的蒙版标签标签进行平滑处理,然后分别为每个MV和源心脏体积设计多个TF,将体素的强度映射到沿投射射线的每个采样点的颜色和不透明度。使用边界颜色调整技术将结果值合成在一起,该技术可以将分段的解剖结构信息“编码”到已跳动的心脏的渲染源体积中。我们的算法可实时产生高图像质量,而不会在渲染的4维(4D)心脏体积中引入混合伪像。

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