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Vortex and Source Particles for Fluid Motion Estimation

机译:涡旋和源粒子用于流体运动估计

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摘要

In this paper we propose a new motion estimator for image sequences depicting fluid flows. The proposed estimator is based on the Helmholtz decomposition of vector fields. This decomposition consists in representing the velocity field as a sum of a divergence free component and a curl free component. The objective is to provide a low-dimensional parametric representation of optical flows by depicting them as a flow generated by a small number of vortex and source particles. Both components are approximated using a discretization of the vorticity and divergence maps through regularized Dirac measures. The resulting so called irrotational and solenoidal fields consist then in linear combinations of basis functions obtained through a convolution product of the Green kernel gradient and the vorticity map or the divergence map respectively. The coefficient values and the basis function parameters are obtained by minimization of a functional relying on an integrated version of mass conservation principle of fluid mechanics. Results are provided on real world sequences.
机译:在本文中,我们为描述流体流动的图像序列提出了一种新的运动估计器。提出的估计器基于矢量场的亥姆霍兹分解。这种分解在于将速度场表示为无散度分量和无卷曲分量之和。目的是通过将光流描述为由少量涡流和源粒子生成的流来提供光流的低维参数表示。通过正则化Dirac测度的涡度图和散度图的离散化,可以近似估算这两个分量。然后,所得到的所谓的无旋磁场和螺线管磁场分别是通过格林核梯度和涡度图或散度图的卷积积获得的基函数的线性组合。系数值和基本函数参数是通过依赖于流体力学质量守恒原理的集成版本来最小化函数而获得的。结果在真实世界的序列上提供。

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