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Image Stacks as Parametric Surfaces: Application to Image Registration

机译:图像堆栈作为参数曲面:在图像配准中的应用

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摘要

We introduce a framework in which a stack of images is considered to be a 2-D parametric surface embedded in a higher dimensional space. This is a simple yet powerful idea, known in the literature but not exploited to its fullest. We discuss the properties of image stacks as parametric surfaces, apply this framework to image registration by presenting the image stack surface relative area (ISSRA) registration measure. We show the power of ISSRA as an effective objective function for image registration. Essentially, it shows good performance across a variety of different categories of registration problems: pairwise, groupwise, affine, and non-rigid. Mutual information (MI)—a classical and effective approach for registration—is widely considered to be a good choice for multimodal and pairwise registration while being difficult to extend to the groupwise setting. We discuss the deficiency of MI in the groupwise case from a theoretical point of view, present its connection to ISSRA in the pairwise case, and then show the ready extensibility of ISSRA to the groupwise setting. Experiments and comparisons are performed on different categories of image registration to showcase ISSRA’s wide range of applicability to registration problems in practice.
机译:我们介绍了一个框架,在该框架中,一堆图像被认为是嵌入到高维空间中的二维参数化曲面。这是一个简单而强大的想法,在文献中是已知的,但并未得到充分利用。我们讨论了图像堆栈作为参数曲面的属性,通过介绍图像堆栈表面相对面积(ISSRA)对齐度量,将此框架应用于图像对齐。我们展示了ISSRA作为图像配准的有效目标函数的强大功能。从本质上讲,它在各种不同类别的注册问题上都表现出良好的性能:成对,成组,仿射和非刚性。互助信息(MI)是一种经典且有效的注册方法,被广泛认为是多模式和成对注册的不错选择,但很难扩展到成组设置。我们从理论的角度讨论了成组情况下MI的不足,提出了成对情况下它与ISSRA的联系,然后说明了ISSRA在成组情况下的可扩展性。针对不同类别的图像配准进行了实验和比较,以展示ISSRA在实践中对配准问题的广泛适用性。

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