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Rectification from Radially-Distorted Scales

机译:径向变形秤的校正

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This paper introduces the first minimal solvers that jointly estimate lens distortion and affine rectification from repetitions of rigidly-transformed coplanar local features. The proposed solvers incorporate lens distortion into the camera model and extend accurate rectification to wide-angle images that contain nearly any type of coplanar repeated content. We demonstrate a principled approach to generating stable minimal solvers by the Grobner basis method, which is accomplished by sampling feasible monomial bases to maximize numerical stability. Synthetic and real-image experiments confirm that the solvers give accurate rectifications from noisy measurements if used in a RANSAC-based estimator. The proposed solvers demonstrate superior robustness to noise compared to the state of the art. The solvers work on scenes without straight lines and, in general, relax strong assumptions about scene content made by the state of the art. Accurate rectifications on imagery taken with narrow focal length to fisheye lenses demonstrate the wide applicability of the proposed method. The method is automatic, and the code is published at https://github.com/prittjam/repeats.
机译:本文介绍了第一个最小解算器,它们可以通过重复计算刚性变形的共面局部特征来共同估计透镜畸变和仿射校正。提出的求解器将镜头畸变合并到相机模型中,并将精确的校正扩展到包含几乎任何类型的共面重复内容的广角图像。我们演示了通过Grobner基法生成稳定的最小求解器的原理方法,该方法通过对可行的单项式基数进行采样以使数值稳定性最大化来实现。合成和真实图像实验证实,如果在基于RANSAC的估算器中使用,则求解器会根据噪声测量结果提供准确的校正。与现有技术相比,提出的求解器显示出对噪声的出色鲁棒性。求解器在没有直线的场景上工作,并且通常会放宽对现有技术对场景内容的强烈假设。对窄焦距鱼眼镜头拍摄的图像进行精确校正,证明了该方法的广泛适用性。该方法是自动的,并且代码发布在https://github.com/prittjam/r​​epeats。

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