体积图像中高斯曲率和平均曲率的精确估计

Erik L. G. Wernersson, C. L. Hendriks, Anders Brun
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引用次数: 14

摘要

在纸张和复合材料的{3D}微ct图像中,曲率是木纤维的一个有用的低水平表面描述符。例如,它可以用来区分木材纤维的外部和内部(管腔)。由于图像采集会引入噪声,因此需要进行某种平滑以获得准确的曲率估计。然而,在这些材料中,感兴趣的纤维通常既薄又密。在本文中,我们展示了在这些情况下现有的方法如何不能准确地捕获曲率信息。保持分辨率和平滑噪声是两个相互竞争的目标。在某些情况下,现有的方法甚至会估计出主曲率的错误符号。我们还提出了一种新的方法,在几个实验中显示出更好的性能。这种新方法通常会对薄物体和近距离物体产生更好的曲率估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Accurate Estimation of Gaussian and Mean Curvature in Volumetric Images
Curvature is a useful low level surface descriptor of wood fibres in {3D} micro-CT images of paper and composite materials. It may for instance be used to differentiate between the outside and the inside (lumen) of wood fibre. Since the image acquisition introduces noise, some kind of smoothing is required to obtain accurate estimates of curvature. However, in these materials, the fibres of interest are frequently both thin and densely packed. In this paper, we show how existing methods fail to accurately capture curvature information under these circumstances. Maintained resolution and smoothing of noise are two competing goals. In some situations, existing methods will even estimate the wrong signs of the principal curvatures. We also present a novel method, which is shown to have better performance in several experiments. This new method will generically produce better curvature estimates for thin objects and objects in close proximity.
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