融合矢量距离信息的光学图像三维坐标变换模型

Hua Ran, Yihua Huo, Zili Huang
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引用次数: 0

摘要

为了减小光学图像中三维目标匹配时仿射变换的误差,利用光学图像中高度特征的距离信息(矢量距离信息)将光学图像匹配模型扩展到三维,提出了三维坐标变换。理论分析表明,将光学成像模型简化为针孔成像模型时,不存在三维坐标变换的误差,同时避免了非线性问题。以最小二乘估计和RANSAC估计为例,分析了三维坐标变换的计算量;三维坐标变换的计算量是仿射变换的4倍,是RANSAC估计的2倍。利用可视化仿真软件VegaPrime和MATLAB对基于SIFT特征点的匹配跟踪算法进行了三维坐标变换的仿真分析,验证了三维坐标变换的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3D coordinate transform model of optical images fusing vector distance information
For reducing the error of affine transform while matching the three-dimensional targets in optical images, the model of optical images matching was extended to three dimension using distance information of high characteristics in optical images (vector distance information), the three-dimensional (3D) coordinate transform was proposed. Theoretical analysis shows that when the optical imaging model was simplified to pinhole imaging model, the error of 3D coordinate transform didn’t exist, while avoiding the nonlinear problem. The amount of calculation of 3D coordinate transform was analyzed using least squares estimation and RANSAC estimation as examples; the amount of calculation of 3D coordinate transform is only four times of affine transform, twice when using RANSAC estimates. The simulation analysis of matching tracking algorithm based on SIFT feature points using 3D coordinate transform was taken by the visual simulation software VegaPrime and MATLAB, and the advantages of 3D coordinate transform has been verified.
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