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一种基于马尔可夫随机场的保拓扑配准方法:在基于对象的层析图像插值中的应用。

A Markov random field approach for topology-preserving registration: application to object-based tomographic image interpolation.

机构信息

Department of Teoría de la Señal y Comunicaciones e Ingeniería Telemática, University of Valladolid, Valladolid, Spain.

出版信息

IEEE Trans Image Process. 2012 Apr;21(4):2047-61. doi: 10.1109/TIP.2011.2171354. Epub 2011 Oct 13.

Abstract

This paper proposes a topology-preserving multiresolution elastic registration method based on a discrete Markov random field of deformations and a block-matching procedure. The method is applied to the object-based interpolation of tomographic slices. For that purpose, the fidelity of a given deformation to the data is established by a block-matching strategy based on intensity- and gradient-related features, the smoothness of the transformation is favored by an appropriate prior on the field, and the deformation is guaranteed to maintain the topology by imposing some hard constraints on the local configurations of the field. The resulting deformation is defined as the maximum a posteriori configuration. Additionally, the relative influence of the fidelity and smoothness terms is weighted by the unsupervised estimation of the field parameters. In order to obtain an unbiased interpolation result, the registration is performed both in the forward and backward directions, and the resulting transformations are combined by using the local information content of the deformation. The method is applied to magnetic resonance and computed tomography acquisitions of the brain and the torso. Quantitative comparisons offer an overall improvement in performance with respect to related works in the literature. Additionally, the application of the interpolation method to cardiac magnetic resonance images has shown that the removal of any of the main components of the algorithm results in a decrease in performance which has proven to be statistically significant.

摘要

本文提出了一种基于离散马尔可夫随机场的变形和块匹配过程的保拓扑多分辨率弹性配准方法。该方法应用于层析切片的基于对象的插值。为此,通过基于强度和梯度相关特征的块匹配策略来建立给定变形与数据的保真度,通过对场的适当先验来促进变换的平滑度,并通过对场的局部配置施加一些硬约束来保证变形保持拓扑。得到的变形被定义为最大后验配置。此外,通过对场参数的无监督估计来加权保真度和平滑度项的相对影响。为了获得无偏插值结果,在正向和反向都进行了配准,并通过使用变形的局部信息量来组合得到的变换。该方法应用于大脑和躯干的磁共振和计算机断层扫描采集。定量比较提供了相对于文献中相关工作的整体性能改进。此外,将插值方法应用于心脏磁共振图像表明,去除算法的任何主要组成部分都会导致性能下降,这已被证明具有统计学意义。

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