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An adaptive clustering for multiple object tracking in sequences in and beyond the visible spectrum

机译:在可见频谱中和超出可见频谱中的多个对象跟踪的自适应聚类

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In this paper, we propose a method to track multiple deformable objects in sequences (with a static camera) in and beyond the visible spectrum by combining Gabor filtering and clustering. In a first step, a set of Gabor filter banks is used to filter the difference image between two consecutive frames. Then, the moving areas are sampled by randomly positioning particles in high magnitude area of the filtered image. Finally, these points are clustered to obtain one class for each moving object. The novelty in our method is in using cluster information from the previous frame to classify new particles in the current frame. This makes our method robust to occlusions, objects entering and leaving the field of view, objects stopping and starting, and moving objects getting really close to each other.
机译:在本文中,我们提出了一种通过组合Gabor滤波和聚类来跟踪在可见光谱中的序列(具有静态摄像机)中的多个可变形对象的方法。在第一步中,一组Gabor滤波器组用于在两个连续帧之间过滤差异图像。然后,通过在滤波图像的高幅度区域中随机定位粒子来采样移动区域。最后,这些点被聚集以获得每个移动对象的一个​​类。我们方法中的新颖性在于使用前一帧的群集信息来对当前帧中的新粒子进行分类。这使得我们的方法强大到闭塞,对象进入并离开视野,对象停止和启动,以及移动物体彼此真正靠近。

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