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Nonmetric lens distortion calibration: closed-form solutions, robust estimation and model selection

机译:非微透镜失真校准:闭合式解决方案,鲁棒估计和模型选择

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We address the problem of calibrating camera lens distortion, which can be significant in medium to wide angle lenses. While almost all existing nonmetric distortion calibration methods need user involvement in one form or another, we present an automatic approach based on the robust the-least-median-of-squares (LMedS) estimator. Our approach is thus less sensitive to erroneous input data such as image curves that are mistakenly considered as projections of 3D linear segments. Our approach uniquely uses fast, closed-form solutions to the distortion coefficients, which serve as an initial point for a nonlinear optimization algorithm to straighten imaged lines. Moreover we propose a method for distortion model selection based on geometrical inference. Successful experiments to evaluate the performance of this approach on synthetic and real data are reported.
机译:我们解决了校准相机镜头失真的问题,这在媒体到广角镜头中可能很大。虽然几乎所有现有的非更换校准方法需要用户参与一种形式或另一个形式,但我们介绍了一种基于稳健的最小二乘(LMEDS)估计器的自动方法。因此,我们的方法对错误的输入数据(如图像曲线)的方法不太敏感,所述图像曲线被认为被认为是3D线性段的投影。我们的方法唯一地使用快速,闭合的解决方案到失真系数,它用作非线性优化算法的初始点,以伸直成像线。此外,我们提出了一种基于几何推理的失真模型选择方法。报告了评估这种方法对合成和实际数据的性能的成功实验。

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