3D Visualization of Medical Image Data Employing 2D Histograms

S. Wesarg, M. Kirschner
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引用次数: 11

Abstract

Transfer functions (TF) are a means for improving the visualization of 3D medical image data. If in addition to intensity another property is employed, two-dimensional TFs can be specified. For this, 2D histograms are helpful. In this work we investigate how the property feature size can be used for the definition of 2D TFs and the visualization of medical image data. Furthermore, we compare this method to approaches that employ gradient magnitude as second property. From our experiments with several medical image data we conclude, that structure size enhanced 2D histograms are more intuitive. This is especially true in the clinical area, where physicians are much more familiar with the meaning of the size of anatomical structures than with the concept of gradient magnitude.
利用二维直方图的医学图像数据的三维可视化
传递函数(TF)是提高三维医学图像数据可视化的一种手段。如果除了强度外,还使用另一个属性,则可以指定二维温度。对此,2D直方图很有帮助。在这项工作中,我们研究了如何将属性特征大小用于二维tf的定义和医学图像数据的可视化。此外,我们将这种方法与采用梯度幅度作为第二属性的方法进行了比较。通过对若干医学图像数据的实验,我们得出结论,结构尺寸增强的二维直方图更加直观。这在临床领域尤其如此,医生更熟悉解剖结构大小的含义,而不是梯度大小的概念。
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