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Visual Object Tracking using Particle Filtering with Dual Manifold Models

机译:使用双歧管模型的粒子滤波进行视觉对象跟踪

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摘要

Compared with affine transformation, projection transformation represents the process of imaging objects more accurately. This paper proposes a novel object tracking method using particle filtering with dual manifold models. One is the covariance manifold used for the object observation model, and the other is the geometric deformation on SL(3) group, where the rank of projection transformation matrix equals 1, adapted to utilize for object dynamic model. Our main contribution is to utilize both the geometry of SL(3) group and covariance manifolds in developing a general particle filtering-based tracking algorithm. Extensive experiments prove that the proposed method can realize stable and accurate tracking of object with significant geometric deformation, even with illumination changes and when an object is obscured.
机译:与仿射变换相比,投影变换代表了更精确地成像对象的过程。本文提出了一种使用带有双流形模型的粒子滤波的目标跟踪方法。一个是用于对象观测模型的协方差流形,另一个是SL(3)组上的几何变形,其中投影变换矩阵的秩等于1,适合用于对象动态模型。我们的主要贡献是在开发基于粒子过滤的通用跟踪算法时,利用SL(3)群的几何和协方差流形。大量的实验证明,所提出的方法即使在光照变化和物体被遮挡的情况下,也可以实现稳定,准确的,具有明显几何变形的物体跟踪。

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