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Spherical parameterization and geometry image-based 3D shape similarity estimation (CGS 2004 special issue)

机译:球面参数化和基于几何图像的3D形状相似性估计(CGS 2004特刊)

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摘要

In this paper, we describe our preliminary findings in applying the spherical parameterization and geometry images to the task of 3D shape matching. View-based techniques compare 3D objects by comparing their 2D projections. However, it is not trivial to choose the number of views and their settings. Geometry images overcome these limitations by mapping the entire object onto a spherical or planar domain. We make use of this property to derive a rotation invariant shape descriptor. Once the geometry image encoding the object's geometric properties is computed, a 1D rotation invariant descriptor is extracted using the spherical harmonic analysis. The parameterization process guarantees the scale invariance, while its coarse-to-fine nature allows the comparison of objects at different scales. We demonstrate and discuss the efficiency of our approach on a collection of 120 three-dimensional models.
机译:在本文中,我们描述了将球形参数化和几何图像应用于3D形状匹配任务的初步发现。基于视图的技术通过比较3D对象的2D投影来比较它们。但是,选择视图数量及其设置并非易事。几何图像通过将整个对象映射到球形或平面域上而克服了这些限制。我们利用此属性来导出旋转不变形状描述符。一旦计算出编码对象几何特性的几何图像,就可以使用球谐分析来提取一维旋转不变描述符。参数化过程保证了尺度不变性,而其粗化到精细的特性允许比较不同尺度下的对象。我们演示并讨论了我们的方法在120个三维模型集合上的效率。

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