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一种用于多相机校准问题的变分方法。

A variational approach to problems in calibration of multiple cameras.

作者信息

Unal Gozde, Yezzi Anthony, Soatto Stefano, Slabaugh Greg

机构信息

Simens Corporate Research, Princeton, NJ 08540, USA.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2007 Aug;29(8):1322-38. doi: 10.1109/TPAMI.2007.1035.

Abstract

This paper addresses the problem of calibrating camera parameters using variational methods. One problem addressed is the severe lens distortion in low-cost cameras. For many computer vision algorithms aiming at reconstructing reliable representations of 3D scenes, the camera distortion effects will lead to inaccurate 3D reconstructions and geometrical measurements if not accounted for. A second problem is the color calibration problem caused by variations in camera responses that result in different color measurements and affects the algorithms that depend on these measurements. We also address the extrinsic camera calibration that estimates relative poses and orientations of multiple cameras in the system and the intrinsic camera calibration that estimates focal lengths and the skew parameters of the cameras. To address these calibration problems, we present multiview stereo techniques based on variational methods that utilize partial and ordinary differential equations. Our approach can also be considered as a coordinated refinement of camera calibration parameters. To reduce computational complexity of such algorithms, we utilize prior knowledge on the calibration object, making a piecewise smooth surface assumption, and evolve the pose, orientation, and scale parameters of such a 3D model object without requiring a 2D feature extraction from camera views. We derive the evolution equations for the distortion coefficients, the color calibration parameters, the extrinsic and intrinsic parameters of the cameras, and present experimental results.

摘要

本文探讨了使用变分方法校准相机参数的问题。所解决的一个问题是低成本相机中严重的镜头畸变。对于许多旨在重建3D场景可靠表示的计算机视觉算法,如果不考虑相机畸变效应,将会导致不准确的3D重建和几何测量。第二个问题是由相机响应变化引起的颜色校准问题,这会导致不同的颜色测量结果,并影响依赖于这些测量的算法。我们还讨论了估计系统中多个相机的相对位姿和方向的外部相机校准,以及估计相机焦距和倾斜参数的内部相机校准。为了解决这些校准问题,我们提出了基于变分方法的多视图立体技术,该技术利用了偏微分方程和常微分方程。我们的方法也可以被视为相机校准参数的协同优化。为了降低此类算法的计算复杂度,我们利用校准对象的先验知识,做出分段光滑表面假设,并在无需从相机视图中提取2D特征的情况下,演化这种3D模型对象的位姿、方向和尺度参数。我们推导了畸变系数、颜色校准参数、相机的外部和内部参数的演化方程,并给出了实验结果。

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