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使用一种新的非线性神经解剖学配准算法增强[15O]水PET研究的多变量信号。

Enhancing the multivariate signal of [15O] water PET studies with a new nonlinear neuroanatomical registration algorithm.

作者信息

Kjems U, Strother S C, Anderson J, Law I, Hansen L K

机构信息

Department of Mathematical Modeling, Technical University of Denmark, Lyngby.

出版信息

IEEE Trans Med Imaging. 1999 Apr;18(4):306-19. doi: 10.1109/42.768840.

DOI:10.1109/42.768840
PMID:10385288
Abstract

This paper addresses the problem of neuro-anatomical registration across individuals for functional [15O] water PET activation studies. A new algorithm for three-dimensional (3-D) nonlinear structural registration (warping) of MR scans is presented. The method performs a hierarchically scaled search for a displacement field, maximizing one of several voxel similarity measures derived from the two-dimensional (2-D) histogram of matched image intensities, subject to a regularizer that ensures smoothness of the displacement field. The effect of the nonlinear structural registration is studied when it is computed on anatomical MR scans and applied to coregistered [15O] water PET scans from the same subjects: in this experiment, a study of visually guided saccadic eye movements. The performance of the nonlinear warp is evaluated using multivariate functional signal and noise measures. These measures prove to be useful for comparing different intersubject registration approaches, e.g., affine versus nonlinear. A comparison of 12-parameter affine registration versus non-linear registration demonstrates that the proposed nonlinear method increases the number of voxels retained in the cross-subject mask. We demonstrate that improved structural registration may result in an improved multivariate functional signal-to-noise ratio (SNR). Furthermore, registration of PET scans using the 12-parameter affine transformations that align the coregistered MR images does not improve registration, compared to 12-parameter affine alignment of the PET images directly.

摘要

本文探讨了在功能性[15O]水PET激活研究中跨个体进行神经解剖配准的问题。提出了一种用于磁共振成像(MR)扫描的三维(3-D)非线性结构配准(扭曲)的新算法。该方法对位移场进行分层缩放搜索,通过最大化从匹配图像强度的二维(2-D)直方图导出的几种体素相似性度量之一,同时受确保位移场平滑性的正则化约束。研究了在解剖学MR扫描上计算非线性结构配准并将其应用于来自同一受试者的配准[15O]水PET扫描时的效果:在该实验中,是一项关于视觉引导扫视眼动的研究。使用多变量功能信号和噪声度量来评估非线性扭曲的性能。这些度量被证明对于比较不同的受试者间配准方法很有用,例如仿射配准与非线性配准。对12参数仿射配准与非线性配准的比较表明,所提出的非线性方法增加了跨受试者掩码中保留的体素数量。我们证明,改进的结构配准可能会导致多变量功能信噪比(SNR)的提高。此外,与直接对PET图像进行12参数仿射对齐相比,使用使配准后的MR图像对齐的12参数仿射变换对PET扫描进行配准并不能改善配准效果。

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