光流跟踪

M. Lucena, J. Fuertes, José I. Gómez, N. P. D. L. Blanca, A. Garrido
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引用次数: 7

摘要

在本文中,我们提出了一个基于Lucas和Kanade算法的观测模型,用于计算光流,并使用粒子滤波算法跟踪目标。虽然光流信息使我们能够知道场景中物体的位移,但由于流计算技术缺乏必要的精度,它不能直接用于物体模型的位移。鉴于概率跟踪算法可以自然地处理不精确或不完整的信息,该模型被用作将流量信息纳入跟踪的自然手段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tracking from optical flow
In this paper, we present an observation model based on the Lucas and Kanade algorithm for computing optical flow, to track objects using particle filter algorithms. Although optical flow information enables us to know the displacement of objects present in a scene, it cannot be used directly to displace an object model since flow calculation techniques lack the necessary precision. In view of the fact that probabilistic tracking algorithms enable imprecise or incomplete information to be handled naturally, this model has been used as a natural means of incorporating flow information into the tracking.
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