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Optimization of radial distortion self-calibration for structure from motion from uncalibrated UAV images

机译:通过未校准的无人机图像的运动优化结构的径向变形自校准

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Structure from motion (SfM) and self-calibration from images of unknown radial distortions could fail under some critical configurations and produce distorted reconstruction results. In this paper, we propose an effective approach to optimize the estimation of radial distortion coefficient by taking full advantage of GPS information, which allows for more accurate SfM results. A feedback function is designed as the metric to indicate the magnitude of the distortion error. Heuristic search strategies are applied to search for the optimal distortion coefficient. Extensive experimental results show that our approach can effectively reduce the distorted deformation error and improve the estimation accuracy of the distortion coefficient.
机译:在某些关键配置下,来自运动的结构(SfM)和来自未知径向变形的图像的自校准可能会失败,并产生变形的重建结果。在本文中,我们提出了一种有效的方法,可以充分利用GPS信息来优化径向畸变系数的估计,从而获得更准确的SfM结果。反馈功能被设计为度量标准,以指示失真误差的大小。启发式搜索策略用于搜索最佳失真系数。大量的实验结果表明,该方法可以有效减少变形的变形误差,提高变形系数的估计精度。

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