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Adaptive particle sampling and adaptive appearance for multiple video object tracking

机译:多视频目标跟踪的自适应粒子采样和自适应外观

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摘要

In this work, we propose an innovative method to integrate the Kalman filter and adaptive particle sampling for multiple video object tracking. Taking advantage of both the closed-form equations for optimal prediction and update from Kalman filters and the versatility of particle sampling for measurement selection under occlusion or segmentation error cases, the proposed method achieves both high tracking accuracy and computational simplicity. The adaptive particle sampling, which uses parameters updated by Kalman filters, can thus require only a small number of particles to achieve high positioning and scaling accuracy. Also, the concept of adaptive appearance is applied to enhance the robustness of occlusion handling. The experimental results confirm the effectiveness of the proposed method.
机译:在这项工作中,我们提出了一种创新的方法,可以将卡尔曼滤波器和自适应粒子采样相集成,以进行多个视频对象跟踪。该方法利用闭式方程式从Kalman滤波器获得最佳预测和更新,并利用粒子采样的多功能性在遮挡或分割误差情况下进行测量选择,从而实现了高跟踪精度和计算简便性。因此,使用由卡尔曼滤波器更新的参数的自适应粒子采样可以只需要少量粒子即可实现高定位和缩放精度。同样,自适应外观的概念被应用来增强遮挡处理的鲁棒性。实验结果证实了该方法的有效性。

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