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Over-Parameterized Variational Optical Flow

机译:过参数化的变化光流

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A novel optical flow estimation process based on a spatio-temporal model with varying coefficients multiplying a set of basis functions at each pixel is introduced. Previous optical flow estimation methodologies did not use such an over parameterized representation of the flow field as the problem is ill-posed even without introducing any additional parameters: Neighborhood based methods of the Lucas–Kanade type determine the flow at each pixel by constraining the flow to be described by a few parameters in small neighborhoods. Modern variational methods represent the optic flow directly via the flow field components at each pixel. The benefit of over-parametrization becomes evident in the smoothness term, which instead of directly penalizing for changes in the optic flow, accumulates a cost of deviating from the assumed optic flow model. Our proposed method is very general and the classical variational optical flow techniques are special cases of it, when used in conjunction with constant basis functions. Experimental results with the novel flow estimation process yield significant improvements with respect to the best results published so far.
机译:介绍了一种基于时空模型的新颖光流估计过程,该模型具有随时间变化的系数乘以每个像素处的一组基函数。以前的光流估计方法没有使用流场的过度参数化表示法,因为即使没有引入任何其他参数,问题仍然不合理:基于卢卡斯-卡纳德类型的基于邻域的方法通过约束流来确定每个像素处的流在小邻里用一些参数来描述。现代变分方法直接通过每个像素处的流场分量表示光流。在平滑度术语中,过度参数化的好处变得显而易见,而不是直接惩罚光通量的变化,反而增加了偏离假定光通量模型的成本。当与恒定基函数结合使用时,我们提出的方法非常通用,经典的变分光流技术是该方法的特例。与迄今为止公布的最佳结果相比,采用新颖的流量估算过程的实验结果产生了重大改进。

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