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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Multimodal estimation of discontinuous optical flow using Markov random fields
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Multimodal estimation of discontinuous optical flow using Markov random fields

机译:使用马尔可夫随机场的不连续光流多模态估计

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The estimation of dense velocity fields from image sequences is basically an ill-posed problem, primarily because the data only partially constrain the solution. It is rendered especially difficult by the presence of motion boundaries and occlusion regions which are not taken into account by standard regularization approaches. In this paper, the authors present a multimodal approach to the problem of motion estimation in which the computation of visual motion is based on several complementary constraints. It is shown that multiple constraints can provide more accurate flow estimation in a wide range of circumstances. The theoretical framework relies on Bayesian estimation associated with global statistical models, namely, Markov random fields. The constraints introduced here aim to address the following issues: optical flow estimation while preserving motion boundaries, processing of occlusion regions, fusion between gradient and feature-based motion constraint equations. Deterministic relaxation algorithms are used to merge information and to provide a solution to the maximum a posteriori estimation of the unknown dense motion field. The algorithm is well suited to a multiresolution implementation which brings an appreciable speed-up as well as a significant improvement of estimation when large displacements are present in the scene. Experiments on synthetic and real world image sequences are reported.
机译:从图像序列估计密集速度场基本上是一个不适定的问题,主要是因为数据仅部分约束了解。由于运动边界和遮挡区域的存在而使其变得特别困难,而运动边界和遮挡区域并未被标准正则化方法所考虑。在本文中,作者提出了一种针对运动估计问题的多峰方法,其中视觉运动的计算基于多个互补约束。结果表明,多种约束条件可以在多种情况下提供更准确的流量估算。该理论框架依赖于与全局统计模型(即马尔可夫随机场)相关的贝叶斯估计。此处引入的约束旨在解决以下问题:在保留运动边界的同时进行光流估计,遮挡区域的处理,基于梯度和基于特征的运动约束方程之间的融合。确定性松弛算法用于合并信息并为未知密集运动场的最大后验估计提供解决方案。该算法非常适合于多分辨率实现,当场景中存在大位移时,该实现带来明显的加速以及估计的显着改进。报告了合成和真实世界图像序列的实验。

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