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A three-dimensional surface registration method using a spherical unwrapping method and HK curvature descriptors for patient-to-CT registration of image guided surgery

机译:使用球形展开方法和HK曲率描述符的三维表面配准方法,用于图像引导手术的患者到CT配准

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In image guided surgery, image-to-patient registration process is required to use actively pre-operative images such as CT and MRI during operation. One method that utilizes 3D surface measurement data of patients among several image-to-patient registration methods is dealt with in this paper. After a hand held 3D surface measurement device measures the surface of patient's surgical site, this 3D data is registered to CT or MRI data using computer-based optimization algorithms. However, general ICP algorithm has some disadvantages that it takes a long converging time if a proper initial location is not set up and also suffers from local minimum problem during the process. Though this problem can be avoided by manual set-up of the proper initial location before performing ICP, it has also critical disadvantages that an experienced user has to perform the method due to algorithms' sensitivity, and also takes another long time. In this paper, we propose an automatic method that can accurately find the proper initial location without manual intervention. The proposed method finds the proper initial location for ICP by converting 3D data to 2D curvature images and performing image matching automatically. It is based on the characteristics that curvature features are robust to the rotation, translation, and even some deformation.
机译:在图像引导手术中,需要进行图像对患者的配准过程,以在手术期间积极使用术前图像,例如CT和MRI。本文讨论了一种在几种图像到患者的配准方法中利用患者3D表面测量数据的方法。手持式3D表面测量设备测量患者手术部位的表面后,可使用基于计算机的优化算法将此3D数据记录到CT或MRI数据中。然而,常规的ICP算法具有一些缺点,如果没有设置适当的初始位置,则将花费很长的收敛时间,并且在处理过程中还会遭受局部最小的问题。尽管可以通过在执行ICP之前手动设置正确的初始位置来避免此问题,但它也具有严重的缺点,即由于算法的敏感性,有经验的用户必须执行该方法,并且还需要花费较长时间。在本文中,我们提出了一种自动方法,该方法无需人工干预即可准确地找到正确的初始位置。所提出的方法通过将3D数据转换为2D曲率图像并自动执行图像匹配来找到ICP的正确初始位置。它基于以下特征:曲率特征对旋转,平移甚至某些变形具有鲁棒性。

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