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Image Registration Using Markov Random Coefficient Fields

机译:使用Markov随机系数字段的图像注册

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Image Registration is central to different applications such as medical analysis, biomedical systems, image guidance, etc. In this paper we propose a new algorithm for multi-modal image registration. A Bayesian formulation is presented in which a likelihood term is defined using an observation model based on linear intensity transformation functions. The coefficients of these transformations are represented as prior information by means of Markov random fields. This probabilistic approach allows one to find optimal estimators by minimizing an energy function in terms of both the parameters that control the affine transformation of one of the images and the coefficient fields of the intensity transformations for each pixel.
机译:图像配准是不同应用的核心,如医学分析,生物医学系统,图像引导等。在本文中,我们提出了一种新的多模态图像配准算法。提出了一种贝叶斯配方,其中使用基于线性强度变换函数的观察模型来定义似然术语。通过马尔可夫随机字段,这些变换的系数被表示为先前信息。这种概率方法允许人们通过在控制每个像素的强度变换的一个图像和系数场的仿射变换的参数中最小化能量函数来找到最佳估计器。

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