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Tracking in 3D: image Variability Decomposition for Recovering Object Pose And illumination

机译:3D跟踪:用于恢复对象姿势和照明的图像可变性分解

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摘要

As an object moves through space, it changes its orientation relative to the viewing camera and relative to light sources which illuminate it. As a consequence, the images of the object produced by the viewing camera may change dramatically. Thus, to successfully track a moving object, image changes due to varying pose and illumination must be accounted for. In this paper, we develop a method for object tracking that can not only accommodate large changes in object pose and illumination, but can recover these parameters as well. To do this, we separately model the image variation of the object produced by changes in pose and illumination. To track the object through each image in the sequences, we then locally search the models to find the best match, recovering the object's orientation and illumination in the process. Throughout, we present experimental results, achieved in real-time, demonstrating the effectiveness of our methods.
机译:当物体在空间中移动时,它会相对于观察摄像机以及照明光源的方向发生变化。结果,观察相机产生的物体的图像可能会发生巨大变化。因此,为了成功地跟踪运动物体,必须考虑由于姿势和照明的变化而引起的图像变化。在本文中,我们开发了一种对象跟踪方法,该方法不仅可以适应对象姿势和照明的较大变化,而且还可以恢复这些参数。为此,我们分别对姿势和光照变化产生的物体的图像变化建模。为了通过序列中的每个图像跟踪对象,然后我们在本地搜索模型以找到最佳匹配,从而在此过程中恢复对象的方向和照明。在整个过程中,我们展示了实时获得的实验结果,证明了我们方法的有效性。

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