Range-Image segmentation and model reconstruction based on a fit-and-merge strategy

M. Djebali, Mahmoud Melkemi, N. Sapidis
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引用次数: 17

Abstract

A segmentation and model-reconstruction algorithm is proposed based on polynomial approximation and on a novel version of "region growing". First, an initial partition is calculated on the basis of differential-geometric properties of the range image. Then, the first merging procedure is applied ("merge with constraints") aiming at correctly identifying principal surfaces of the model. It examines all possible mergers of regions and selects those satisfying strict compatibility constraints. The second merging procedure relaxes these constraints to produce the final segmentation. Theoretical work is presented proving the consistency of these merging procedures. Finally, application of the algorithm on industrial data is presented demonstrating the efficiency of the proposed methodology.
基于拟合融合策略的距离图像分割与模型重建
提出了一种基于多项式近似和新版本的“区域生长”的分割和模型重建算法。首先,根据距离图像的微分几何特性计算初始分割;然后,应用第一个合并过程(“与约束合并”),旨在正确识别模型的主曲面。它检查所有可能的区域合并,并选择那些满足严格兼容性约束的区域。第二个合并过程放松这些约束以产生最终的分割。理论工作证明了这些合并过程的一致性。最后,给出了该算法在工业数据上的应用,证明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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