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Quantitative evaluation of convolution-based methods for medical image interpolation.

机译:基于卷积的医学图像插值方法的定量评估。

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摘要

Interpolation is required in a variety of medical image processing applications. Although many interpolation techniques are known from the literature, evaluations of these techniques for the specific task of applying geometrical transformations to medical images are still lacking. In this paper we present such an evaluation. We consider convolution-based interpolation methods and rigid transformations (rotations and translations). A large number of sinc-approximating kernels are evaluated, including piecewise polynomial kernels and a large number of windowed sinc kernels, with spatial supports ranging from two to ten grid intervals. In the evaluation we use images from a wide variety of medical image modalities. The results show that spline interpolation is to be preferred over all other methods, both for its accuracy and its relatively low computational cost.
机译:在各种医学图像处理应用中需要插值。尽管从文献中已知许多插值技术,但是仍缺乏对将几何变换应用于医学图像的特定任务的这些技术的评估。在本文中,我们提出了这样的评估。我们考虑基于卷积的插值方法和刚性变换(旋转和平移)。评估了许多近似正弦的核,包括分段多项式核和大量带窗正弦核,其空间支持范围从2到10个网格间隔。在评估中,我们使用来自各种医学图像模态的图像。结果表明,无论是精度还是相对较低的计算成本,样条插值均优于其他所有方法。

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