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Calibration method for sparse multi-view cameras by bridging with a mobile camera

机译:与移动摄像机桥接的稀疏多视点摄像机的校准方法

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Camera calibration that estimates the projective relationship between 3D and 2D image spaces is one of the most crucial processes for such 3D image processing as 3D reconstruction and 3D tracking. A strong calibration method, which needs to place landmarks with known 3D positions, is a common technique. However, as the target space becomes large, landmark placement becomes more complicated. Although a weak-calibration method does not need known landmarks to estimate a projective transformation matrix from the correspondence information among multi-view images, the estimation precision depends on the accuracy of the correspondence. When multiple cameras are arranged sparsely, detecting sufficient corresponding points is difficult. In this research, we propose a calibration method that bridges sparse multiple cameras with mobile camera images. The mobile camera captures video images while moving among sparse multi-view cameras. The captured video resembles dense multi-view images and includes sparse multi-view images so that weak-calibration is effective. We confirmed the appropriate spacing between the images through comparative experiments of camera calibration accuracy by changing the number of bridging images and applied our proposed method to multiple capturing experiments in a large-scale space and verified its robustness.
机译:估计3D和2D图像空间之间投影关系的相机校准是3D图像处理(如3D重建和3D跟踪)的最关键过程之一。一种常见的技术是一种强大的校准方法,该方法需要使用已知的3D位置放置界标。但是,随着目标空间变大,地标的放置变得更加复杂。尽管弱校准方法不需要已知的界标来根据多视图图像之间的对应信息来估计投影变换矩阵,但是估计精度取决于对应的精度。当稀疏地布置多个摄像机时,难以检测到足够的对应点。在这项研究中,我们提出了一种将稀疏多台摄像机与移动摄像机图像桥接的校准方法。移动相机在稀疏多视图相机之间移动时捕获视频图像。捕获的视频类似于密集的多视图图像,并且包含稀疏的多视图图像,因此弱校准有效。通过更改桥接图像的数量,通过相机校准精度的对比实验,我们确定了图像之间的适当间距,并将我们提出的方法应用于大规模空间中的多次捕获实验,并验证了其鲁棒性。

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