Evaluating collinearity constraint for automatic range image registration

Yonghuai Liu, Longzhuang Li, Baogang Wei
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引用次数: 3

Abstract

While most of the existing range image registration algorithms either have to extract and match structural (geometric or optical) features or have to estimate the motion parameters of interest from outliers corrupted point correspondence data for the elimination of false matches in the process of image registration, the registration error and the collinearity error derived directly from the traditional closest point criterion are also capable of doing the same job. However, the latter has an advantage of easy implementation. The purpose of this paper is to investigate which definition of collinearity is more accurate and stable in eliminating false matches inevitably introduced by the closest point criterion. The experiments based on real images show the advantages and disadvantages of different definitions of collinearity.
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自动距离图像配准的共线性约束评价
虽然现有的距离图像配准算法要么提取和匹配结构(几何或光学)特征,要么从异常点损坏的对应数据中估计感兴趣的运动参数,以消除图像配准过程中的错误匹配,但直接从传统的最接近点准则中得出的配准误差和共线性误差也能够完成相同的工作。但是,后者具有易于实现的优点。本文的目的是研究哪种共线性定义在消除由最近点准则不可避免地引入的错误匹配时更准确和稳定。基于真实图像的实验显示了不同共线性定义的优缺点。
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