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首页> 外文期刊>Journal of Mathematical Imaging and Vision >A Fourier Domain Framework for Variational Image Registration
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A Fourier Domain Framework for Variational Image Registration

机译:可变图像配准的傅立叶域框架

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摘要

Image registration is a widely used task in image analysis, having applications in various fields. Its classical formulation is usually given in the spatial domain. In this paper, a novel theoretical framework defined in the frequency domain is proposed for approaching the multidimensional image registration problem. The variational minimization of the joint energy functional is performed entirely in the frequency domain, leading to a simple formulation and design, and offering important computational savings if the multidimensional FFT algorithm is used. Therefore the proposed framework provides more efficient implementations of the most common registration methods than already existing approaches, adding simplicity to the variational image registration formulation and allowing for an easy extension to higher dimensions by using the multidimensional Fourier transform of discrete multidimensional signals. The new formulation also provides an interesting framework to design tailor-made regularization models apart from the classical, spatial domain based schemes. Simulation examples validate the theoretical results.
机译:图像配准是图像分析中广泛使用的任务,在各个领域都有应用。它的经典表述通常在空间范围内给出。本文提出了一种在频域中定义的新颖理论框架,用于解决多维图像配准问题。联合能量函数的变化最小化完全在频域中执行,从而导致了简单的公式化和设计,并且如果使用多维FFT算法,则可节省大量计算量。因此,与已经存在的方法相比,所提出的框架提供了最通用的配准方法的更有效的实现,为变异图像配准公式增加了简单性,并允许通过使用离散多维信号的多维傅里叶变换轻松地扩展到更高的维度。除了基于空间域的经典方案之外,新的公式还提供了一个有趣的框架来设计量身定制的正则化模型。仿真算例验证了理论结果。

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