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Long-term Object Tracking Algorithm with Occlusion-Awareness and Re-Detection

机译:具有遮挡意识和检测能力的长期目标跟踪算法

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To solve the problem of target loss as occlusion for a variety of Correlation Filter based trackers, an improved tracking algorithm is proposed based on occlusion awareness and target re-detection mechanism in this paper, in which the occlusion awareness module is used to evaluate whether the tracked object is occluded or whether the tracking result is reliable. As the events as occlusion that results in tracking failure occur, the object re-detection module is triggered to re-detect the original tracking target based on integral map of pixel-wise object confidence from color information. Furthermore, when the tracking quality is unreliable and no reliable object is re-detected, and the tracking model is not updated. Experiments show that the proposed algorithm can effectively avoid the problem of the Correlation Filter tracker's variants, loss of the tracked object and model drift caused by occlusion, its tracking performance is obviously improved compared with that of several state-of-the-arts Correlation Filter tracker's variants.
机译:为解决多种基于相关过滤器的跟踪器的目标丢失为闭塞的问题,提出了一种基于闭塞意识和目标重检测机制的改进跟踪算法,该算法利用闭塞意识模块评估是否存在目标闭塞。跟踪对象被遮挡或跟踪结果是否可靠。当发生导致跟踪失败的闭塞事件时,将触发对象重新检测模块,以根据颜色信息中像素方向对象置信度的积分图来重新检测原始跟踪目标。此外,当跟踪质量不可靠并且没有重新检测到可靠的对象时,并且不会更新跟踪模型。实验表明,该算法可以有效避免相关滤波器跟踪器的变种,被遮挡导致跟踪对象丢失和模型漂移等问题,与几种最新的相关滤波器相比,跟踪性能明显提高。跟踪器的变体。

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