基于有源粒子滤波的头部跟踪

Zhihong Zeng, Songde Ma
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引用次数: 24

摘要

粒子滤波因其在杂波环境下的鲁棒跟踪性能而备受关注。然而,为其健壮性付出的代价是计算成本。提出了一种有源粒子滤波方法。与传统的粒子滤波不同,主动粒子滤波首先将每个粒子驱动到其局部似然最大值,然后再对其进行加权。在这种情况下,每个粒子的效率都得到了提高,所需粒子的数量大大减少。实际上,主动粒子滤波中的粒子数更多的是基于环境的杂乱程度和每个粒子的拟合范围,而不是模型配置空间的大小。大量的实验结果表明,该跟踪器在混乱环境中对头部进行平移和全360/spl度/面外旋转进行跟踪是有效和鲁棒的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Head tracking by active particle filtering
Particle filtering has attracted much attention due to its robust tracking performance in clutter. However, a price to pay for its robustness is the computational cost. Active particle filtering is proposed in this paper. Unlike traditional particle filtering, every particle in active particle filtering is first driven to its local maximum of the likelihood before it is weighted. In this case, the efficiency of every particle is improved and the number of required particles is greatly reduced. Actually, the number of particles in the active particle filtering is based more on the cluttered degree of the environment and the fitting range of every particle than on the size of the model's configuration space. Extensive experimental results show that the tracker is efficient and robust in tracking a head undergoing translation and full 360/spl deg/ out-of-plane rotation with partial occlusion in cluttered environments.
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