一种新的三维模型对齐方法

M. Chaouch, Anne Verroust-Blondet
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引用次数: 38

摘要

本文提出了一种新的三维模型对齐方法。该方法基于对称特性,并利用主成分分析(PCA)在平面反射对称方面的良好特性。在pca特征向量中快速搜索最佳的最优对齐轴是我们对齐过程中必不可少的第一步。平面反射对称被用作选择的标准。这种预处理将对齐问题转化为基于保留的pca轴数量的索引方案。我们还引入了局部平移不变性代价(LTIC),它捕获了形状相对于给定方向的局部平移对称性的度量。实验结果表明,该方法能够找到最适合三维网格对齐的旋转方向。
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A novel method for alignment of 3D models
In this paper we present a new method for alignment of 3D models. This approach is based on symmetry properties, and uses the fact that the principal components analysis (PCA) have good properties with respect to the planar reflective symmetry. The fast search of the best optimal alignment axes within the PCA-eigenvectors is an essential first step in our alignment process. The plane reflection symmetry is used as a criterion for selection. This pre-processing transforms the alignment problem into an indexing scheme based on the number of the retained PCA-axes. We also introduce a local translational invariance cost (LTIC) that captures a measure of the local translational symmetries of a shape with respect to a given direction. Experimental results show that the proposed method finds the rotation that best aligns a 3D mesh.
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