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Optical Flow with Harmonic Constraint and Oriented Smoothness

机译:具有谐波约束的光流量和面向光滑度

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Computation of the optical flow from a sequence of images remains open in the community of computer vision. Two classical models for this problem are the global smoothness algorithm proposed by Horn-Schunck and the oriented smoothness algorithm by Nagel and Enkelmann. In order to increase the accuracy of motion discontinuity, we propose a new optical flow model which incorporates the harmonic smoothness constraint borrowed from the harmonic gradient vector flow (HGVF) model into the oriented smoothness constraint. In particular, we combine the curl term of the harmonic constraint with the oriented smoothness to control the direction of the displacement vectors together and introduce two spatially varying weighting functions to control the above-mentioned two terms. The benefit of the suggested strategies is illustrated qualitatively on the synthetical image and quantitatively on the Middlebury optical flow benchmark. Compared with the classical Horn-Schunck and Nagel-Enkelmann methods, this method can provide more accurate estimation of optical flow around motion discontinuities.
机译:从图像序列中的光流的计算仍然是计算机视觉的社区开放。对于这个问题的两个经典款是通过喇叭-Schunck提出的全球平滑算法和内格尔和Enkelmann面向平滑算法。为了增加运动的不连续性的准确性,我们提出一种结合了来自谐波梯度向量流(HGVF)模型借用到面向平滑度约束的谐波平滑约束新的光流模型。特别是,我们结合谐波约束的卷曲术语与面向平滑来控制位移矢量的方向上一起和引入两个空间变化的加权函数来控制上述两个术语。所建议的策略的益处是示出定性的综合图像和定量在明德光流基准。与经典的喇叭-Schunck和纳格尔-Enkelmann方法相比,该方法可以提供光流周围运动的不连续性的更准确的估计。

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