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A Variational Approach to Video Registration with Subspace Constraints

机译:具有子空间约束的视频配准的变分方法

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摘要

This paper addresses the problem of non-rigid video registration, or the computation of optical flow from a reference frame to each of the subsequent images in a sequence, when the camera views deformable objects. We exploit the high correlation between 2D trajectories of different points on the same non-rigid surface by assuming that the displacement of any point throughout the sequence can be expressed in a compact way as a linear combination of a low-rank motion basis. This subspace constraint effectively acts as a trajectory regularization term leading to temporally consistent optical flow. We formulate it as a robust soft constraint within a variational framework by penalizing flow fields that lie outside the low-rank manifold. The resulting energy functional can be decoupled into the optimization of the brightness constancy and spatial regularization terms, leading to an efficient optimization scheme. Additionally, we propose a novel optimization scheme for the case of vector valued images, based on the dualization of the data term. This allows us to extend our approach to deal with colour images which results in significant improvements on the registration results. Finally, we provide a new benchmark dataset, based on motion capture data of a flag waving in the wind, with dense ground truth optical flow for evaluation of multi-frame optical flow algorithms for non-rigid surfaces. Our experiments show that our proposed approach outperforms state of the art optical flow and dense non-rigid registration algorithms.
机译:本文解决了非刚性视频配准的问题,或者当摄像机查看可变形物体时,计算从参考帧到序列中每个后续图像的光流的问题。通过假设整个序列中任何点的位移都可以以紧凑的方式表示为低秩运动基础的线性组合,我们可以利用同一非刚性表面上不同点的2D轨迹之间的高度相关性。该子空间约束有效地用作导致时间上一致的光流的轨迹正则项。我们通过惩罚位于低秩歧管外部的流场,将其表述为变量框架内的鲁棒软约束。可以将生成的能量函数分解为亮度常数和空间正则项的优化,从而产生有效的优化方案。此外,基于数据项的对偶,我们针对向量值图像的情况提出了一种新颖的优化方案。这使我们能够扩展处理彩色图像的方法,从而显着改善配准结果。最后,我们基于风中飘扬的旗帜的运动捕获数据提供了一个新的基准数据集,该数据集具有密集的地面真光流,用于评估非刚性表面的多帧光流算法。我们的实验表明,我们提出的方法优于最新的光流和密集的非刚性配准算法。

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