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Non-rigid point cloud registration based lung motion estimation using tangent-plane distance

机译:基于非刚性点云注册的基于切线距离的肺部运动估计

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摘要

Accurate estimation of motion field in respiration-correlated 4DCT images, is a precondition for the analysis of patient-specific breathing dynamics and subsequent image-supported treatment planning. However, the lung motion estimation often suffers from the sliding motion. In this paper, a novel lung motion method based on the non-rigid registration of point clouds is proposed, and the tangent-plane distance is used to represent the distance term, which describes the difference between two point clouds. Local affine transformation model is used to express the non-rigid deformation of the lung motion. The final objective function is expressed in the Frobenius norm formation, and matrix optimization scheme is carried out to find out the optimal transformation parameters that minimize the objective function. A key advantage of our proposed method is that it alleviates the requirement that the source point cloud and the reference point cloud should be in one-to-one corresponding relationship, and the requirement is difficult to be satisfied in practical application. Furthermore, the proposed method takes the sliding motion of the lung into consideration and improves the registration accuracy by reducing the constraint of the motion along the tangent direction. Non-rigid registration experiments are carried out to validate the performance of the proposed method using popi-model data. The results demonstrate that the proposed method outperforms the traditional method with about 20% accuracy increase.
机译:准确估计呼吸相关的4DCT图像中的运动场,是分析患者特异性呼吸动力学和随后的图像支持的治疗计划的前提。然而,肺部运动估计通常遭受滑动运动。在本文中,提出了一种基于点云的非刚性配准的新型肺运动方法,并且切线距离用于表示距离项,其描述了两个点云之间的差异。局部仿射变换模型用于表达肺部运动的非刚性变形。最终的目标函数以Frobenius规范形成表示,并进行矩阵优化方案,以找出最小化目标函数的最佳变换参数。我们提出的方法的主要优点是,它减轻了要求,即源点云和基准点云应该是一个一对一的对应关系,并且要求是很难在实际应用中得到满足。此外,所提出的方法采用肺的滑动运动来考虑并通过减小沿着切线方向的运动的约束来提高登记精度。进行非刚性注册实验以验证使用Popi-Model数据的提出方法的性能。结果表明,所提出的方法优于传统方法,精度约20%。

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