Yunpeng Liu, Guangwei Li, Zelin Shi
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摘要

目标的动态变形是图像跟踪中的一个突出问题。现有的基于粒子滤波的跟踪算法大多将目标的变形参数作为矢量处理。提出了一种基于流形的粒子滤波的可变形目标跟踪算法,该算法在系统状态处于低维流形的约束下实现了粒子滤波:仿射李群。序列贝叶斯更新包括在流形测地线上移动时绘制状态样本;这为状态空间的变化提供了平滑的先验。然后通过李群上的方法估计仿射变形参数。对矢量空间上基于粒子滤波的跟踪算法的理论分析和实验评价表明了该算法的可行性和有效性。
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Tracking Deformable Object via Particle Filtering on Manifolds
Dynamic deformation of target is a prominent problem in image-based tracking. Most existing particle filtering based tracking algorithms treat deformation parameters of the target as a vector. We have proposed a deformable target tracking algorithm via particle filtering on manifolds, which implements the particle filter with the constraint that the system state lies in a low dimensional manifold: affine Lie group. The sequential Bayesian updating consists in drawing state samples while moving on the manifold geodesics; this provides a smooth prior for the state space change. Then we estimate affine deformation parameters through means on Lie group. Theoretic analysis and experimental evaluations against the tracking algorithm based on particle filtering on vector spaces demonstrate the promise and effectiveness of this algorithm.
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