Geometric segmentation of perspective images based on symmetry groups

A. Yang, Shankar R. Rao, Kun Huang, Wei Hong, Yi Ma
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引用次数: 20

Abstract

Symmetry is an effective geometric cue to facilitate conventional segmentation techniques on images of man-made environment. Based on three fundamental principles that summarize the relations between symmetry and perspective imaging, namely, structure from symmetry, symmetry hypothesis testing, and global symmetry testing, we develop a prototype system which is able to automatically segment symmetric objects in space from single 2D perspective images. The result of such a segmentation is a hierarchy of geometric primitives, called symmetry cells and complexes, whose 3D structure and pose are fully recovered. Such a geometrically meaningful segmentation may greatly facilitate applications such as feature matching and robot navigation.
基于对称群的透视图像几何分割
对称是一种有效的几何线索,可以简化传统的人工环境图像分割技术。基于对称构造、对称假设检验和全局对称检验这三个基本原理,我们开发了一个能够从单幅二维透视图像中自动分割空间对称物体的原型系统。这种分割的结果是几何原语的层次结构,称为对称细胞和复合物,其三维结构和姿态被完全恢复。这种几何上有意义的分割可以极大地促进特征匹配和机器人导航等应用。
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