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Robust Non-Rigid Registration of Medical Images with Incomplete Image Information Using Local Structure-Adaptive Block Matching Method

机译:使用局部结构自适应块匹配方法具有不完全图像信息的医学图像的强大非刚性注册

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A novel non-rigid registration algorithm within multi-resolution block matching framework is presented for accurate and robust image registration in the presence of incomplete image information. After getting the deformation field computed from block-matching, we introduce robust and structure-adaptive normalized convolution in spatial regularization of deformation field. Unlike traditional framework of normalized convolution, in which the local deformation is modified through a projection onto a subspace, however, the applicability function of structure-adaptive normalized convolution based on an anisotropic Gaussian kernel is adapted to local linear or edge structures in the images to be registered. This leads to more samples of regions of homogeneity being gathered for the regularization of deformation field, which can reduce deformation diffusion across discontinuities. A robust signal certainty is also adapted to each displacement vector in the deformation field to measure its accuracy. The results show that the method is sufficiently accurate and robust to incomplete image information for multi-temporal non-rigid image registration.
机译:在存在不完全图像信息的情况下,呈现多分辨率块匹配框架内的新型非刚性登记算法。在获取从块匹配中计算的变形字段后,我们在变形字段的空间正则化中引入了鲁棒和结构自适应阵列。与传统的阵列卷积框架不同,其中通过投影来修改局部变形,然而,基于各向异性高斯内核的结构 - 自适应归一化卷积的适用性功能适用于图像中的局部线性或边缘结构注册。这导致更多地聚集在变形场的正则化的均匀性区域样本,这可以减少跨越不连续性的变形扩散。强大的信号确定性也适用于变形场中的每个位移矢量,以测量其精度。结果表明,该方法对多时间非刚性图像配准的不完全图像信息具有足够的准确和鲁棒。

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