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Optical Flow 3D Segmentation and Interpretation: A Variational Method with Active Curve Evolution and Level Sets

机译:光流3D分割和解释:具有主动曲线演化和水平集的变分方法

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This study investigates a variational, active curve evolution method for dense three-dimensional (3D) segmentation and interpretation of optical flow in an image sequence of a scene containing moving rigid objects viewed by a possibly moving camera. This method jointly performs 3D motion segmentation, 3D interpretation (recovery of 3D structure and motion), and optical flow estimation. The objective functional contains two data terms for each segmentation region, one based on the motion-only equation which relates the essential parameters of 3D rigid body motion to optical flow, and the other on the Horn and Schunck optical flow constraint. It also contains two regularization terms for each region, one for optical flow, the other for the region boundary. The necessary conditions for a minimum of the functional result in concurrent 3D-motion segmentation, by active curve evolution via level sets, and linear estimation of each region essential parameters and optical flow. Subsequently, the screw of 3D motion and regularized relative depth are recovered analytically for each region from the estimated essential parameters and optical flow. Examples are provided which verify the method and its implementation
机译:这项研究研究了一种可变的,主动的曲线演化方法,用于密集三维(3D)分割和场景图像序列中光流的解释,该场景包含可能由运动的摄像机查看的运动的刚性物体。该方法共同执行3D运动分割,3D解释(3D结构和运动的恢复)和光流估计。目标函数包含每个分割区域的两个数据项,一个基于仅运动方程,该方程将3D刚体运动的基本参数与光流相关联,另一个基于Horn和Schunck光学流约束。对于每个区域,它还包含两个正则化项,一个用于光流,另一个用于区域边界。通过水平集的主动曲线演变以及每个区域基本参数和光流的线性估计,可以在并发3D运动分割中获得最低限度的功能结果。随后,根据估计的基本参数和光流,针对每个区域分析性地恢复3D运动和规则化相对深度的螺钉。提供了一些示例来验证该方法及其实现

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