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A parallel color-based particle filter for object tracking

机译:基于颜色的并行粒子过滤器,用于对象跟踪

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摘要

Porting well known computer vision algorithms to low power, high performance computing devices such as SIMD linear processor arrays can be a challenging task. One especially useful such algorithm is the color-based particle filter, which has been applied successfully by many research groups to the problem of tracking nonrigid objects. In this paper, we propose an implementation of the color-based particle filter suitable for SIMD processors. The main focus of our work is on the parallel computation of the particle weights. This step is the major bottleneck of standard implementations of the color-based particle filter since it requires the knowledge of the histograms of the regions surrounding each hypothesized target position. We expect this approach to perform faster in an SIMD processor than an implementation in a standard desktop computer even running at much lower clock speeds.
机译:将众所周知的计算机视觉算法移植到低功耗,高性能计算设备(如SIMD线性处理器阵列)可能是一项艰巨的任务。一种特别有用的算法是基于颜色的粒子过滤器,它已被许多研究小组成功地用于跟踪非刚性物体的问题。在本文中,我们提出了一种适用于SIMD处理器的基于颜色的粒子滤波器的实现。我们工作的主要重点是颗粒重量的并行计算。此步骤是基于颜色的粒子滤镜的标准实现的主要瓶颈,因为它需要了解每个假定目标位置周围区域的直方图。我们期望这种方法在SIMD处理器中的执行速度比在标准台式计算机中的执行速度还要快,甚至以更低的时钟速度运行。

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