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Estimating optical flow in segmented images using variable-order parametric models with local deformations

机译:使用具有局部变形的可变阶参数模型估计分割图像中的光流

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This paper presents a new model for estimating optical flow based on the motion of planar regions plus local deformations. The approach exploits brightness information to organize and constrain the interpretation of the motion by using segmented regions of piecewise smooth brightness to hypothesize planar regions in the scene. Parametric flow models are estimated in these regions in a two step process which first computes a coarse fit and then estimates the appropriate parametrization of the motion of the region. The initial fit is refined using a generalization of the standard area-based regression approaches. Since the assumption of planarity is likely to be violated, we allow local deformations from the planar assumption in the same spirit as physically-based approaches which model shape using coarse parametric models plus local deformations. This parametric plus deformation model exploits the strong constraints of parametric approaches while retaining the adaptive nature of regularization approaches. Experimental results on a variety of images model produces accurate flow estimates while the incorporation of brightness segmentation boundaries.
机译:本文提出了一种基于平面区域的运动加上局部变形来估计光流的新模型。该方法通过使用分段平滑亮度的分段区域来假设场景中的平面区域,从而利用亮度信息来组织和约束运动的解释。在两步过程中估计这些区域中的参数流模型,该过程首先计算粗略拟合,然后估计该区域运动的适当参数化。使用基于区域的标准回归方法的泛化来完善初始拟合。由于可能会违反平面性假设,因此我们允许以与基于物理的方法相同的精神,根据平面假设进行局部变形,而基于物理的方法是使用粗参数模型加上局部变形来对形状进行建模。该参数加变形模型在保留正则化方法的自适应性质的同时,充分利用了参数化方法的强大约束。在各种图像模型上的实验结果可在结合亮度分割边界的同时产生准确的流量估计。

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