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Determining Motion Directly from Normal Flows Upon the Use of a Spherical Eye Platform

机译:使用球眼平台直接从正常流量确定运动

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We address the problem of recovering camera motion from video data, which does not require the establishment of feature correspondences or computation of optical flows but from normal flows directly. We have designed an imaging system that has a wide field of view by fixating a number of cameras together to form an approximate spherical eye. With a substantially widened visual field, we discover that estimating the directions of translation and rotation components of the motion separately are possible and particularly efficient. In addition, the inherent ambiguities between translation and rotation also disappear. Magnitude of rotation is recovered subsequently. Experimental results on synthetic and real image data are provided. The results show that not only the accuracy of motion estimation is comparable to those of the state-of-the-art methods that require explicit feature correspondences or optical flows, but also a faster computation time.
机译:我们解决了从视频数据恢复摄像机运动的问题,这不需要建立特征对应关系或计算光流,而是直接从正常流中恢复。我们设计了一种成像系统,该系统通过将多个摄像机固定在一起以形成近似球形的眼睛,从而具有广阔的视野。借助大大拓宽的视野,我们发现分别估计运动的平移和旋转分量的方向是可能且特别有效的。此外,平移和旋转之间固有的歧义也消失了。随后恢复旋转的幅度。提供了关于合成和真实图像数据的实验结果。结果表明,不仅运动估计的精度可与需要显式特征对应或光流的最新方法相媲美,而且计算时间也更短。

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