Multiple Object Tracking in aerial vehicle overhead video

Shaozhe Guo, Youshan Zhang, Yong Li, Yao Wang
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Abstract

This paper proposes a multiple Object Tracking algorithm for drone overhead video, which solves some of the specific problems in this field. By studying the characteristics of small and dense targets in the UAV overhead shooting video, using the self-supervision technology to innovate the dynamic mask structure, combined with the existing multiple Object Tracking idea of first detection and then tracking, we designed our multiple Object Tracking algorithm, and finally trained and tested on the Visdrone dataset, which got good results and proved the superiority of our algorithm in the UAV overhead video.
飞行器头顶视频中的多目标跟踪
本文提出了一种针对无人机头顶视频的多目标跟踪算法,解决了该领域的一些具体问题。通过研究无人机架空拍摄视频中小而密集目标的特点,利用自监督技术创新动态掩模结构,结合现有的先检测后跟踪的多目标跟踪思路,设计了我们的多目标跟踪算法,最后在Visdrone数据集上进行了训练和测试,取得了良好的效果,证明了我们的算法在无人机架空视频中的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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