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Efficient Measurement of Shape Dissimilarity between 3D Models Using Z-Buffer and Surface Roving Method

机译:使用Z缓冲区和表面漫游方法有效测量3D模型之间的形状差异

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Estimation of the shape dissimilarity between 3D models is a very important problem in both computer vision and graphics for 3D surface reconstruction, modeling, matching, and compression. In this paper, we propose a novel method called surface roving technique to estimate the shape dissimilarity between 3D models. Unlike conventional methods, our surface roving approach exploits a virtual camera and Z-buffer, which is commonly used in 3D graphics. The corresponding points on different 3D models can be easily identified, and also the distance between them is determined efficiently, regardless of the representation types of the 3D models. Moreover, by employing the viewpoint sampling technique, the overall computation can be greatly reduced so that the dissimilarity is obtained rapidly without loss of accuracy. Experimental results show that the proposed algorithm achieves fast and accurate measurement of shape dissimilarity for different types of 3D object models.
机译:在计算机视觉和用于3D表面重建,建模,匹配和压缩的图形中,估计3D模型之间的形状差异是一个非常重要的问题。在本文中,我们提出了一种称为表面粗纱技术的新方法来估计3D模型之间的形状差异。与传统方法不同,我们的表面粗纱方法利用了3D图形中常用的虚拟相机和Z缓冲区。无论3D模型的表示类型如何,都可以轻松识别不同3D模型上的对应点,并且可以有效地确定它们之间的距离。此外,通过采用视点采样技术,可以大大减少总体计算,从而在不损失精度的情况下迅速获得相似性。实验结果表明,针对不同类型的3D对象模型,该算法可以快速,准确地测量形状差异。

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