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Variational classification for visualization of 3D ultrasound data

机译:用于可视化3D超声数据的变分分类

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We present a new technique for visualizing surfaces from 3D ultrasound data. 3D ultrasound datasets are typically fuzzy, contain a substantial amount of noise and speckle, and suffer from several other problems that make extraction of continuous and smooth surfaces extremely difficult. We propose a novel opacity classification algorithm for 3D ultrasound datasets, based on the variational principle. More specifically, we compute a volumetric opacity function that optimally satisfies a set of simultaneous requirements. One requirement makes the function attain nonzero values only in the vicinity of a user-specified value, resulting in soft shells of finite, approximately constant thickness around isosurfaces in the volume. Other requirements are designed to make the function smoother and less sensitive to noise and speckle. The computed opacity function lends itself well to explicit geometric surface extraction, as well as to direct volume rendering at interactive rates. We also describe a new splatting algorithm that is particularly well suited for displaying soft opacity shells. Several examples and comparisons are included to illustrate our approach and demonstrate its effectiveness on real 3D ultrasound datasets.
机译:我们提出了一种从3D超声数据可视化表面的新技术。 3D超声数据集通常是模糊的,含有大量的噪音和散斑,并且遭受了几种其他问题,使得连续和平滑表面极其困难。我们提出了一种基于变分原理的三维超声数据集的新型透明度分类算法。更具体地,我们计算体积透明度函数,最佳地满足一组同时要求。一个要求使功能仅在用户指定的值附近获得非零值,从而导致有限的软壳,在体积中的Isosurfaces周围的近似恒定的厚度。其他要求旨在使功能更平滑,对噪音和散斑敏感。计算的透明度函数很好地利用显式的几何表面提取,以及以交互式速率的直接卷材渲染。我们还描述了一种新的拆分算法,特别适用于显示软不透明壳。包括若干示例和比较,以说明我们的方法并展示其对真实3D超声数据集的有效性。

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