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Entropy distribution and coverage rate-based birth intensity estimation in GM-PHD filter for multi-target visual tracking

机译:用于多目标视觉跟踪的GM-PHD滤波器中基于熵分布和覆盖率的出生强度估计

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摘要

Tracking multiple moving targets in video is a challenge because of the presence of noisy video data and varying numbers of targets, and data association problems. In this paper, a multi-target visual tracking system that combines object detection with the Gaussian mixture probability hypothesis density filter is developed, in which a new birth intensity estimation method based on entropy distribution and coverage rate is proposed. The birth intensity is first initialized by the previously obtained target states and measurements. The measurements are obtained by object detection and are classified into the birth measurements and the survival measurements. The currently obtained birth measurements are then used to update the birth intensity. In the update stage, the entropy distribution is incorporated to remove some noises within the initialized birth intensity that are irrelevant to the birth measurements. The coverage rate between each birth intensity component and the corresponding birth measurement is computed to further eliminate the noises. Experiments on noisy video sequences are conducted to show the good performance of the proposed visual tracking system.
机译:跟踪视频中的多个移动目标是一项挑战,因为存在嘈杂的视频数据,目标数量不断变化以及数据关联问题。本文提出了一种将目标检测与高斯混合概率假设密度滤波器相结合的多目标视觉跟踪系统,提出了一种新的基于熵分布和覆盖率的出生强度估计方法。首先通过先前获得的目标状态和测量值来初始化出生强度。这些测量值是通过物体检测获得的,分为出生测量值和生存测量值。然后,将当前获得的出生测量值用于更新出生强度。在更新阶段,结合熵分布以消除初始化的出生强度内与出生测量无关的一些噪声。计算每个出生强度分量和相应的出生度量之间的覆盖率,以进一步消除噪声。进行了对嘈杂视频序列的实验,以显示所提出的视觉跟踪系统的良好性能。

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