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首页> 外文期刊>Journal of Medical Imaging and Health Informatics >Global Optimization Surface-Based Registration for Image-to-Patient Registration Using Gaussian Mixture Model
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Global Optimization Surface-Based Registration for Image-to-Patient Registration Using Gaussian Mixture Model

机译:使用高斯混合模型进行图像到患者配准的全局优化基于表面的配准

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摘要

Image-to-patient spatial registration plays a central role in image-guided neurosurgery systems (IGNS). Although the marker-based paired-point registration is widely used for image-to-patient registration, this method is impractical for clinical application. As an alternative, surface-matching registration based on the surface geometry of the face is being developed. In this paper, a global optimization surface-based method for image-to-patient registration using Gaussian Mixture Model (GMM) is presented. The key idea of this method is that each point set of the surface to be registered is considered as a whole, and point-to-point correlations in the overall space and subspace of the point set are-selected as the characteristics for the-registration process. The method was tested on 2D data sets, a 3D range scan face data set, and head phantom data for rigid point set registration. For the 2D rigid registration, the results obtained from the proposed method are compared to the results of two mainstream registration methods based on GMM from the impacts of the ini-tial position. The experimental results demonstrate that the proposed method has a good registration performance, is robust for the initial location on the registration results, and is easily implemented.
机译:图像到患者的空间配准在图像引导的神经外科系统(IGNS)中起着核心作用。尽管基于标记的配对点配准已广泛用于图像到患者的配准,但是这种方法在临床应用中并不实用。作为替代,正在开发基于面部的表面几何形状的表面匹配配准。本文提出了一种基于全局优化的基于表面的高斯混合模型(GMM)图像对患者的注册方法。该方法的关键思想是将要配准的表面的每个点集视为一个整体,并选择点集的整体空间和子空间中的点对点关联作为配准的特征处理。该方法已在2D数据集,3D范围扫描面数据集和用于刚性点集配准的头部模型数据上进行了测试。对于2D刚性配准,将从初始位置的影响中,将所提方法获得的结果与两种基于GMM的主流配准方法的结果进行比较。实验结果表明,该方法具有良好的配准性能,对配准结果的初始位置具有鲁棒性,易于实现。

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