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Scene Flow Estimation Based on Adaptive Anisotropic Total Variation Flow-Driven Method

机译:基于自适应各向异性总变化流量驱动方法的场景流估计

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摘要

Scene flow estimation based on disparity and optical flow is a challenging task. We present a novel method based on adaptive anisotropic total variation flow-driven method for scene flow estimation from a calibrated stereo image sequence. The basic idea is that diffusion of flow field in different directions has different rates, which can be used to calculate total variation and anisotropic diffusion automatically. Brightness consistency and gradient consistency constraint are employed to establish the data term, and adaptive anisotropic flow-driven penalty constraint is employed to establish the smoothness term. Similar to the optical flow estimation, there are also large displacement problems in the estimation of the scene flow, which is solved by introducing a hierarchical computing optimization. The proposed method is verified by using the synthetic dataset and the real scene image sequences. The experimental results show the effectiveness of the proposed algorithm.
机译:基于差异和光流的场景流程估计是一个具有挑战性的任务。我们提出了一种基于自适应各向异性总变形流程方法的新方法,用于从校准立体图像序列的场景流量估计。基本思想是,不同方向上的流场的扩散具有不同的速率,其可用于自动计算总变化和各向异性扩散。使用亮度一致性和梯度一致性约束来建立数据项,采用自适应各向异性流动驱动的惩罚限制来建立平滑度术语。类似于光学流程估计,在场景流的估计中存在大的位移问题,这通过引入分层计算优化来解决。通过使用合成数据集和真实场景图像序列来验证所提出的方法。实验结果表明了该算法的有效性。

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