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Nonmetric calibration of camera lens distortion: differential methods and robust estimation

机译:相机镜头畸变的非度量校准:差分方法和鲁棒估计

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This paper addresses the problem of calibrating camera lens distortion, which can be significant in medium to wide angle lenses. Our approach is based on the analysis of distorted images of straight lines. We derive new distortion measures that can be optimized using nonlinear search techniques to find the best distortion parameters that straighten these lines. Unlike the other existing approaches, we also provide fast, closed-form solutions to the distortion coefficients. We prove that including both the distortion center and the decentering coefficients in the nonlinear optimization step may lead to instability of the estimation algorithm. Our approach provides a way to get around this, and, at the same time, it reduces the search space of the calibration problem without sacrificing the accuracy and produces more stable and noise-robust results. In addition, while almost all existing nonmetric distortion calibration methods needs user involvement in one form or another, we present a robust approach to distortion calibration based on the least-median-of-squares estimator. Our approach is, thus, able to proceed in a fully automatic manner while being less sensitive to erroneous input data such as image curves that are mistakenly considered projections of three-dimensional linear segments. Experiments to evaluate the performance of this approach on synthetic and real data are reported.
机译:本文解决了校准相机镜头畸变的问题,这在中到广角镜头中很重要。我们的方法基于对直线失真图像的分析。我们得出了可以使用非线性搜索技术优化的新失真度量,以找到使这些直线变直的最佳失真参数。与其他现有方法不同,我们还提供了失真系数的快速,封闭形式的解决方案。我们证明,在非线性优化步骤中同时包含失真中心和偏心系数可能会导致估计算法不稳定。我们的方法提供了一种解决此问题的方法,同时,它在不牺牲精度的情况下减少了校准问题的搜索空间,并产生了更稳定且噪声更高的结果。另外,尽管几乎所有现有的非度量失真校准方法都需要用户以一种或另一种形式参与,但我们提出了一种基于最小二乘方中位数估计器的可靠方法来进行失真校准。因此,我们的方法能够以全自动的方式进行,而对诸如图像曲线之类的错误输入数据不那么敏感,这些错误输入数据被误认为是三维线性段的投影。报告了评估这种方法对合成和真实数据性能的实验。

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