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Determining shape and motion from monocular camera: A direct approach using normal flows

机译:通过单眼相机确定形状和运动:使用法线流的直接方法

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Determining the spatial motion of a moving camera from a video is a classical problem in computer vision. The difficulty of this problem is that the flow pattern directly observable in the video is generally not the complete flow pattern induced by the motion, but only the partial information of it, which is known as the normal flow. In this paper, we present a direct method which neither requires the establishment of feature correspondences nor the recovery of optical flow between two image frames, but we directly utilize all observable normal flow data to recover the camera motion. We propose a two-stage iterative algorithm to search the solution in the motion space in a coarse-to-fine framework. The first stage involves the use of the direction part of the normal flow. Each of these normal flow data can provide a constrained solution space to the direction of motion. The intersection of the motion solutions from all the available normal flow data can reduce the motion ambiguity to a certain extent. We then use the globality of the rotational magnitude to all image positions to constrain the motion parameters further. Once the camera motion is determined, the depth map of the imaged scene (up to an arbitrary scale) can be recovered. Experimental results on synthetic data and real images are provided to reveal the performance of the proposed method. (C) 2014 Elsevier Ltd. All rights reserved.
机译:从视频确定移动摄像机的空间运动是计算机视觉中的经典问题。这个问题的难点在于,在视频中直接可观察到的流型通常不是由运动引起的完整流型,而仅仅是运动的部分信息,即正常流。在本文中,我们提出了一种直接方法,既不需要建立特征对应关系,也不需要恢复两个图像帧之间的光流,但是我们直接利用所有可观察到的正常流数据来恢复相机运动。我们提出了一种两阶段迭代算法,以从粗到精的框架在运动空间中搜索解决方案。第一阶段涉及法向流的方向部分的使用。这些正常流量数据中的每一个都可以为运动方向提供受约束的解空间。来自所有可用正常流数据的运动解的交集可以在一定程度上降低运动歧义。然后,我们对所有图像位置使用旋转幅度的整体性来进一步约束运动参数。一旦确定了摄像机的运动,就可以恢复成像场景的深度图(最大比例)。提供了合成数据和真实图像的实验结果,以揭示该方法的性能。 (C)2014 Elsevier Ltd.保留所有权利。

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