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首页> 外文期刊>IEEE transactions on visualization and computer graphics >Uncertainty Visualization in Medical Volume Rendering Using Probabilistic Animation
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Uncertainty Visualization in Medical Volume Rendering Using Probabilistic Animation

机译:使用概率动画的医学体量渲染中的不确定性可视化

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摘要

Direct Volume Rendering has proved to be an effective visualization method for medical data sets and has reached wide-spread clinical use. The diagnostic exploration, in essence, corresponds to a tissue classification task, which is often complex and time-consuming. Moreover, a major problem is the lack of information on the uncertainty of the classification, which can have dramatic consequences for the diagnosis. In this paper this problem is addressed by proposing animation methods to convey uncertainty in the rendering. The foundation is a probabilistic Transfer Function model which allows for direct user interaction with the classification. The rendering is animated by sampling the probability domain over time, which results in varying appearance for uncertain regions. A particularly promising application of this technique is a u00026;#x201C;sensitivity lensu00026;#x201D; applied to focus regions in the data set. The methods have been evaluated by radiologists in a study simulating the clinical task of stenosis assessment, in which the animation technique is shown to outperform traditional rendering in terms of assessment accuracy.
机译:直接体积渲染已被证明是一种用于医学数据集的有效可视化方法,并且已广泛应用于临床。本质上,诊断探索对应于组织分类任务,这通常是复杂且耗时的。此外,一个主要问题是缺乏有关分类不确定性的信息,这可能会对诊断产生重大影响。在本文中,通过提出动画方法来传达渲染中的不确定性来解决此问题。基础是一个概率传递函数模型,该模型允许用户直接与分类进行交互。通过随时间采样概率域来对渲染进行动画处理,这会导致不确定区域的外观发生变化。该技术的一个特别有希望的应用是u00026;#x201C;灵敏度镜头u00026;#x201D;应用于数据集中的焦点区域。放射科医生在模拟狭窄评估临床任务的研究中对这些方法进行了评估,该研究显示动画技术在评估准确性方面优于传统渲染。

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