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Camera Calibration from Periodic Motion of a Pedestrian

机译:从行人的周期性运动校准相机校准

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Camera calibration directly from image sequences of a pedestrian without using any calibration object is a really challenging task and should be well solved in computer vision, especially in visual surveillance. In this paper, we propose a novel camera calibration method based on recovering the three orthogonal vanishing points (TOVPs), just using an image sequence of a pedestrian walking in a straight line, without any assumption of scenes or motions, e.g., control points with known 3D coordinates, parallel or perpendicular lines, non-natural or pre-designed special human motions, as often necessary in previous methods. The traces of shoes of a pedestrian carry more rich and easily detectable metric information than all other body parts in the periodic motion of a pedestrian, but such information is usually overlooked by previous work. In this paper, we employ the images of the toes of the shoes on the ground plane to determine the vanishing point corresponding to the walking direction, and then utilize harmonic conjugate properties in projective geometry to recover the vanishing point corresponding to the perpendicular direction of the walking direction in the horizontal plane and the vanishing point corresponding to the vertical direction. After recovering all of the TOVPs, the intrinsic and extrinsic parameters of the camera can be determined. Experiments on various scenes and viewing angles prove the feasibility and accuracy of the proposed method.
机译:直接摄像机标定从行人的图像序列,而无需使用任何校准的对象是真正具有挑战性的任务,应该在计算机视觉得到很好的解决,特别是在视觉监控。在本文中,我们提出了一种基于回收所述三个正交消失点(TOVPs),只使用一个行人行走在一条直线上的图像序列的新型照相机校正方法,没有场景或动作,例如任何假设,控制点与已知的3D坐标,平行或垂直线,非天然的或者预先设计的特殊的人的运动,因为经常需要在以前的方法。一行人的鞋的痕迹进行比在一行人的周期运动的所有其他身体部位更丰富,易于检测的度量信息,但这些信息通常是由以前的工作被忽视。在本文中,我们采用的在地平面的鞋脚趾的图像,以确定对应于行走方向的消失点,然后在投影几何利用谐波共轭性以恢复对应于所述垂直方向上的消失点在水平面内行走方向和对应于垂直方向上的消失点。回收所有的TOVPs的之后,照相机的固有和非固有参数可以被确定。在各种场景的实验和观察的角度证明了该方法的可行性和准确性。

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