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A Locally Adaptive Regularization Based on Anisotropic Diffusion for Deformable Image Registration of Sliding Organs

机译:基于各向异性扩散的局部自适应正则化用于滑动器官变形图像配准

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摘要

We propose a deformable image registration algorithm that uses anisotropic smoothing for regularization to find correspondences between images of sliding organs. In particular, we apply the method for respiratory motion estimation in longitudinal thoracic and abdominal computed tomography scans. The algorithm uses locally adaptive diffusion tensors to determine the direction and magnitude with which to smooth the components of the displacement field that are normal and tangential to an expected sliding boundary. Validation was performed using synthetic, phantom, and 14 clinical datasets, including the publicly available DIR-Lab dataset. We show that motion discontinuities caused by sliding can be effectively recovered, unlike conventional regularizations that enforce globally smooth motion. In the clinical datasets, target registration error showed improved accuracy for lung landmarks compared to the diffusive regularization. We also present a generalization of our algorithm to other sliding geometries, including sliding tubes (e.g., needles sliding through tissue, or contrast agent flowing through a vessel). Potential clinical applications of this method include longitudinal change detection and radiotherapy for lung or abdominal tumours, especially those near the chest or abdominal wall.
机译:我们提出了一种变形图像配准算法,该算法使用各向异性平滑进行正则化,以找到滑动器官图像之间的对应关系。特别是,我们将这种方法用于胸部和腹部CT扫描中的呼吸运动估计。该算法使用局部自适应扩散张量来确定方向和大小,从而平滑和垂直于预期滑动边界的切向位移分量。使用合成,幻像和14个临床数据集(包括可公开获得的DIR-Lab数据集)进行验证。我们表明,由滑动引起的运动不连续性可以有效地恢复,这与强制执行全局平滑运动的常规规则化不同。在临床数据集中,与弥散正则化相比,目标配准错误显示出肺标志物的准确性提高。我们还对其他滑动几何形状(包括滑动管(例如,穿过组织滑动的针头或流过血管的造影剂))展示了我们的算法的一般化。这种方法的潜在临床应用包括对肺部或腹部肿瘤(尤其是在胸部或腹壁附近的肿瘤)进行纵向变化检测和放射疗法。

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