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Gene Expression Data to Mouse Atlas Registration Using a Nonlinear Elasticity Smoother and Landmark Points Constraints

机译:基因表达数据使用非线性弹性光滑和地标点的限制使用非线性弹性

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摘要

This paper proposes a numerical algorithm for image registration using energy minimization and nonlinear elasticity regularization. Application to the registration of gene expression data to a neuroanatomical mouse atlas in two dimensions is shown. We apply a nonlinear elasticity regularization to allow larger and smoother deformations, and further enforce optimality constraints on the landmark points distance for better feature matching. To overcome the difficulty of minimizing the nonlinear elasticity functional due to the nonlinearity in the derivatives of the displacement vector field, we introduce a matrix variable to approximate the Jacobian matrix and solve for the simplified Euler-Lagrange equations. By comparison with image registration using linear regularization, experimental results show that the proposed nonlinear elasticity model also needs fewer numerical corrections such as regridding steps for binary image registration, it renders better ground truth, and produces larger mutual information; most importantly, the landmark points distance and L2 dissimilarity measure between the gene expression data and corresponding mouse atlas are smaller compared with the registration model with biharmonic regularization.
机译:本文提出了一种利用能量最小化和非线性弹性正则化的图像配准的数值算法。示出了在两个维度中向基因表达数据注册到神经杀死的小鼠地图集。我们应用非线性弹性正则化,以允许更大且更平滑的变形,并进一步强制对地标点距离的最优限制以获得更好的特征匹配。为了克服由于位移矢量场的衍生物中的非线性引起的非线性弹性功能最小化的难度,我们介绍了一种矩阵变量以近似于雅可比矩阵并求解简化的欧拉拉格朗日方程。通过比较使用线性正则化的图像配准,实验结果表明,该建议的非线性弹性模型也需要较少的数值校正,例如二进制图像配准的抛出步骤,它呈现出更好的实践,并产生更大的相互信息;最重要的是,与具有Biharmonic正规化的登记模型相比,基因表达数据和相应的鼠标地图集之间的地标点距离和L 2 相似性测量。

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