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Multi-level fast multipole method for thin plate spline evaluation

机译:薄板样条评估的多级快速多极方法

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Image registration is an important problem in image processing and computer vision. Much recent work in image registration is on matching non-rigid deformations. Thin plate splines are an effective image registration method when the deformation between two images can be modeled as the bending of a thin metal plate on point constraints such that the topology is preserved (non-rigid deformation). However, because evaluating the computed TPS model at all the image pixels is computationally expensive, we need to speed it up. We introduce the use of multi-level fast muitipole method (MLFMM) for this purpose. Our contribution lies in the presentation of a clear and concise MLFMM framework for TPS, which will be useful for future application developments. The achieved speedup using MLFMM is an improvement from O(N/sup 2/) to O(N log N). We show that the fast evaluation outperforms the brute force method while maintaining acceptable error bound.
机译:图像配准是图像处理和计算机视觉中的重要问题。图像配准的许多最新工作是匹配非刚性变形。当可以将两个图像之间的变形建模为薄金属板在点约束下的弯曲,从而保留拓扑结构(非刚性变形)时,薄板样条线是一种有效的图像配准方法。但是,由于在所有图像像素处评估计算出的TPS模型的计算量很大,因此我们需要加快速度。为此,我们介绍了多级快速多极方法(MLFMM)的使用。我们的贡献在于为TPS提出了一个简洁明了的MLFMM框架,这对于将来的应用程序开发将非常有用。使用MLFMM实现的加速是从O(N / sup 2 /)到O(N log N)的改进。我们表明,在保持可接受的误差范围的同时,快速评估的性能优于蛮力法。

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