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Collapsed-cone based deformation field regularization for nonrigid image registration

机译:基于折叠的非rigid图像配准的变形场正规化

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Incorporating biomedical information into nonrigid image registration is an important approach to improve the registration quality and provide realistic results. However, previous tissue-dependent deformation field filtering incur a relatively high computation cost in order to obtain results of improved quality. In this paper, we propose a collapsed-cone based adaptive filtering method to reduce the computational overhead of regularization. The filter is designed to change its filtering parameters dynamically at each voxel according to the tissue characteristics and the deformation of the surrounding voxels. The proposed filter is integrated into the demons deformable registration method to evaluate its effectiveness and performance. The evaluation is performed on a set of 3D computed tomography (CT) images and the result quality is compared with the output of those without applying the tissue-dependent filter. The results show that our proposed method can preserve the global features better. Based on the measure of sum of squared differences (SSD), the proposed method is also found converging faster and leading to lower SSD.
机译:将生物医学信息纳入Nonrigid图像注册是提高注册质量并提供现实结果的重要方法。然而,先前的组织依赖性变形现场滤波产生相对高的计算成本,以获得提高质量的结果。在本文中,我们提出了一种基于折叠的锥形自适应滤波方法,以减少正则化的计算开销。滤波器旨在根据组织特性和周围体素的变形在每个体素处动态地改变其滤波参数。所提出的过滤器集成到恶魔可变形的登记方法中,以评估其有效性和性能。在一组3D计算机断层扫描(CT)图像上执行评估,并且将结果质量与其中的输出进行比较,而不应用组织依赖滤波器。结果表明,我们提出的方法可以更好地保持全球特征。基于平方差异总和(SSD)的量,还发现所提出的方法更快并导致降低SSD。

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