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3D registration of depth data of porous surface coatings based on 3D phase correlation and the trimmed ICP algorithm

机译:基于3D相位相关和修整ICP算法的多孔表面涂层深度数据的3D配准

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摘要

A critical factor of endoprostheses is the quality of the tribological pairing. The objective of this research project is to manufacture stochastically porous aluminum oxide surface coatings with high wear resistance and an active friction minimization. There are many experimental and computational techniques from mercury porosimetry to imaging methods for studying porous materials, however, the characterization of disordered pore networks is still a great challenge. To meet this challenge it is striven to gain a three dimensional high resolution reconstruction of the surface. In this work, the reconstruction is approached by repeatedly milling down the surface by a fixed decrement while measuring each layer using a confocal laser scanning microscope (CLSM). The so acquired depth data of the successive layers is then registered pairwise. Within this work a direct registration approach is deployed and implemented in two steps, a coarse and a fine alignment. The coarse alignment of the depth data is limited to a translational shift which occurs in horizontal direction due to placing the sample in turns under the CLSM and the milling machine and in vertical direction due to the milling process itself. The shift is determined by an approach utilizing 3D phase correlation. The fine alignment is implemented by the Trimmed Iterative Closest Point algorithm, matching the most likely common pixels roughly specified by an estimated overlap rate. With the presented two-step approach a proper 3D registration of the successive depth data of the layer is obtained. © COPYRIGHT SPIE. Downloading of the abstract is permitted for personal use only.
机译:内置假体的关键因素是摩擦配对的质量。该研究项目的目的是制造具有高耐磨性和最小化主动摩擦的随机多孔氧化铝表面涂层。从水银孔隙率法到成像方法,已有许多实验和计算技术用于研究多孔材料,但是,无序孔网络的表征仍然是一个巨大的挑战。为了应对这一挑战,努力获得表面的三维高分辨率重构。在这项工作中,通过使用共焦激光扫描显微镜(CLSM)测量每一层,同时以固定的减量反复向下研磨表面来进行重建。然后将如此获取的连续层的深度数据成对记录。在这项工作中,直接注册方法通过两个步骤进行部署和实施,粗略对齐和精细对齐。深度数据的粗略对齐限于水平移动,这是由于将样品依次放置在CLSM和铣刨机下方而在水平方向发生的,而由于铣削过程本身则在垂直方向发生的。通过利用3D相位相关的方法来确定偏移。精细对齐是通过Trimmed迭代最近点算法实现的,该算法与估计的重叠率大致指定的最可能的公共像素匹配。利用提出的两步法,可以获得层的连续深度数据的适当3D配准。 ©版权所有SPIE。摘要的下载仅允许个人使用。

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