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DISCRIMINATIVE CORRELATION FILTER TRACKING WITH OCCLUSION DETECTION

机译:闭塞检测辨别相关滤波器跟踪

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Aiming at the problem that the correlation filter-based tracking algorithm can not track the target of severe occlusion, a target re-detection mechanism is proposed. First of all, based on the ECO, we propose the multi-peak detection model and the response value to distinguish the occlusion and deformation in the target tracking, which improve the success rate of tracking. And then we add the confidence model to update the mechanism to effectively prevent the model offset problem which due to similar targets or background during the tracking process. Finally, the redetection mechanism of the target is added, and the relocation is performed after the target is lost, which increases the accuracy of the target positioning. The experimental results demonstrate that the proposed tracker performs favorably against state-of-the-art methods in terms of robustness and accuracy.
机译:针对基于相关滤波器的跟踪算法不能跟踪严重遮挡的目标的问题,提出了一种目标重新检测机制。首先,基于ECO,我们提出了多峰值检测模型和响应值,以区分目标跟踪中的闭塞和变形,从而提高跟踪成功率。然后,我们添加了置信模型来更新机制,以有效地防止模型偏移问题,这是由于在跟踪过程中的类似目标或背景。最后,添加了目标的重新检测机制,并且在目标丢失后进行重定位,这增加了目标定位的准确性。实验结果表明,所提出的跟踪器在鲁棒性和准确性方面对最先进的方法进行了有利的方法。

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