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Investigation into registration of scanned 3D image based on geometric feature identification

机译:基于几何特征识别的扫描3D图像配准研究

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This paper investigates geometric feature extraction from scanned image and applies it in multi-view image registration. The presented registration approach includes three steps, feature extraction, coarse registration and fine registration. Firstly, feature points are identified based on curvature estimation, and feature point linkage is set up according to neighboring relationship of the extracted feature points. The coarse registration is conducted by alignment transmission calculation using the overlapping feature linkages extracted from the two-view images. Finally, iterative closest point (ICP) is used in fine registration. Experimental results of multi-view images taken by laser scanner are carried out to compare the convergence and registration error between the presented approaches with classical ICP. The presented registration approach achieves higher convergence than classical ICP, and can overcome the problems of traditional ICP in low overlapping and bad initial estimate.
机译:本文研究了从扫描图像中提取几何特征并将其应用于多视图图像配准中。提出的配准方法包括三个步骤,特征提取,粗略配准和精细配准。首先,基于曲率估计来识别特征点,并根据提取的特征点的相邻关系建立特征点链接。通过使用从两视点图像中提取的重叠特征链接的对准传输计算来进行粗注册。最后,在精细配准中使用迭代最近点(ICP)。进行了激光扫描仪拍摄的多视点图像的实验结果,以比较经典ICP所提出的方法之间的收敛性和配准误差。所提出的配准方法比经典ICP具有更高的收敛性,并且可以克服传统ICP重叠低和初始估计差的问题。

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