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Incorporating Rigid Structures in Non-rigid Registration Using Triangular B-Splines

机译:使用三角B样条将刚性结构纳入非刚性配准

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For non-rigid registration, the objects in medical images are usually treated as a single deformable body with homogeneous stiffness distribution. However, this assumption is invalid for certain parts of the human body, where bony structures move rigidly, while the others may deform. In this paper, we introduce a novel registration technique that models local rigidity of pre-identified rigid structures as well as global non-rigidity in the transformation field using triangular B-splines. In contrast to the conventional registration method based on tensor-product B-splines, our approach recovers local rigid transformation with fewer degrees of freedom (DOFs), and accurately simulates sharp features (C~0 continuity) along the interface between deformable regions and rigid structures, because of the unique advantages offered by triangular B-splines, such as flexible triangular domain, local control and space-varying smoothness modeling. The accurate matching of the source image with the target one is accomplished through the use of a variational framework, in which a composite energy, measuring the image dissimilarity and enforcing local rigidity and global smoothness, is minimized subject to pre-defined point-based constraints. The algorithm is tested on both synthetic and real 2D images for its applicability. The experimental results show that, by accurately modeling sharp features using triangular B-splines, the deformable regions in the vicinity of rigid structures are less constrained by the global smoothness regularization and therefore contribute extra flexibility to the optimization process. Consequently, the registration quality is improved considerably.
机译:对于非刚性配准,通常将医学图像中的对象视为具有均匀刚度分布的单个可变形体。但是,此假设对于人体的某些部分(骨骼结构刚性移动,而其他部分可能变形)无效。在本文中,我们介绍了一种新颖的配准技术,该技术使用三角形B样条曲线对预先确定的刚性结构的局部刚度以及转换场中的全局非刚度进行建模。与基于张量积B样条的常规配准方法相比,我们的方法以较少的自由度(DOF)恢复局部刚性变换,并沿着可变形区域与刚性之间的界面精确模拟清晰特征(C〜0连续性)由于三角形B样条曲线具有独特的优势,例如灵活的三角形域,局部控制和时空平滑度建模,因此可以实现结构。源图像与目标图像的精确匹配是通过使用一种可变框架来实现的,在该框架中,在预先定义的基于点的约束下,可以测量图像的相异度并增强局部刚度和全局平滑度的合成能量被最小化。 。该算法已在合成和真实2D图像上进行了测试,以证明其适用性。实验结果表明,通过使用三角形B样条精确建模尖锐特征,刚性结构附近的可变形区域受到整体光滑度正则化的约束较少,因此为优化过程提供了额外的灵活性。因此,注册质量大大提高。

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