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Geodesic active regions and level set methods for motion estimation and tracking

机译:测地线活动区域和用于运动估计和跟踪的水平集方法

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摘要

Motion analysis in computer vision is a well-studied problem with numerous applications. In particular, the tasks of optical flow estimation and tracking are of increasing interest. In this paper, we propose a level set approach to address both aspects of motion analysis. Our approach relies on the propagation of smooth interfaces to perform tracking while using an incremental estimation of the motion models. Implicit representations are used to represent moving objects, and capture their motion parameters. Information from different sources like a boundary attraction term, a background subtraction component and a visual consistency constraint are considered. The Euler-Lagrange equations within a gradient descent method lead to a flow that deforms a set of initial curve towards the object boundaries as well an incremental robust estimator of their apparent motion. Partial extension of the proposed framework to address dense motion estimation and the case of moving observer is also presented. Promising results demonstrate the performance of the method. (C) 2004 Elsevier Inc. All rights reserved.
机译:计算机视觉中的运动分析是许多应用领域中经过充分研究的问题。特别地,光流估计和跟踪的任务越来越受到关注。在本文中,我们提出了一种水平集方法来解决运动分析的两个方面。我们的方法依靠平滑接口的传播来执行跟踪,同时使用运动模型的增量估计。隐式表示用于表示运动对象并捕获其运动参数。考虑了来自不同来源的信息,例如边界吸引项,背景扣除成分和视觉一致性约束。梯度下降法中的Euler-Lagrange方程导致流动,该流动使一组初始曲线向对象边界变形,并且使它们的视运动增加了鲁棒估计。还提出了所提出框架的部分扩展,以解决密集运动估计和观察者移动的情况。有希望的结果证明了该方法的性能。 (C)2004 Elsevier Inc.保留所有权利。

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