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A robust object tracking synthetic structure using regional mutual information and edge correlation-based tracking algorithm in aerial surveillance application - Springer

机译:基于区域互信息和基于边缘相关性的跟踪算法的鲁棒目标跟踪合成结构在空中监视中的应用-Springer

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This paper issues the problem of moving object tracking in aerial video sequences for surveillance application. The proposed object tracking synthetic structure integrates edge correlation-based (EC) tracking algorithm and a novel regional mutual information-based (RMI) tracking algorithm. In this structure, using a novel defined crowded criterion, we are able to recognize a crowded background and vast difference of illumination. The proposed crowded criterion determines the crowded and non-crowded backgrounds based on two defined intensity variation and relative power measures that are calculated from four rectangular areas around the object. Due to inability of the EC tracking algorithm in tracking the object in the crowded frames, the RMI tracking algorithm is applied to track an object in the crowded frames of video sequences. Against, due to sensitivity of the RMI tracking algorithm to scale variations of the object and less computational complexity of the EC tracking algorithm, the EC tracking algorithm is selected for the object tracking in the non-crowded frames of the video sequences. However, the RMI tracking algorithm is suitable for the frames with the crowded backgrounds, high-intensity variations, noisy conditions, and existence of clutter, but it is sensitive to scale variations of the object. Moreover, it is normally slower than the EC tracking algorithm, but we apply Powell–Golden optimization method to optimize the RMI tracking algorithm, until we can use it as an online algorithm on each frame. The obtained results show the superiority of the proposed tracking structure in comparison with other conventional algorithms. Our proposed structure covers the most challenges of the tracking in the aerial surveillance application.
机译:本文提出了在航空视频序列中用于监控的运动目标跟踪问题。提出的目标跟踪综合结构融合了基于边缘相关性(EC)的跟踪算法和一种新颖的基于区域互信息的(RMI)跟踪算法。在这种结构中,使用新颖的定义的拥挤标准,我们能够识别拥挤的背景和照明的巨大差异。拟议的拥挤标准基于两个定义的强度变化和相对功率度量来确定拥挤和不拥挤的背景,强度变化是根据对象周围四个矩形区域计算得出的。由于EC跟踪算法无法跟踪拥挤帧中的对象,因此将RMI跟踪算法应用于跟踪视频序列拥挤帧中的对象。相对于此,由于RMI跟踪算法对缩放对象变化的敏感度以及EC跟踪算法的计算复杂度较低,因此选择EC跟踪算法进行视频序列非拥挤帧中的对象跟踪。但是,RMI跟踪算法适用于背景拥挤,高强度变化,嘈杂的条件以及存在杂波的帧,但它对对象的比例变化很敏感。此外,它通常比EC跟踪算法慢,但是我们应用Powell-Golden优化方法来优化RMI跟踪算法,直到我们可以将其用作每个帧的在线算法为止。与其他常规算法相比,所获得的结果表明了所提出的跟踪结构的优越性。我们提出的结构涵盖了空中监视应用中跟踪的最大挑战。

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