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Fast Multiple Object Tracking Using Relevant Motion Vector

机译:使用相关运动矢量快速多个对象跟踪

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Multiple object tracking is a crucial task in the field of computer vision. In conventional tracking algorithms, frequent detections are required to achieve a good tracking performance, which makes the process time consuming and unable to be applied in real-time applications. Since the adjacent frames are highly relevant and the relevant motion vector can be extracted directly from compressed videos without extra calculation, we present a fast tracking algorithm based on the relevant motion vector to reduce the detection frequency. In the proposed algorithm, the video is divided into key and non-key frames. For the key frames, the objects are detected on the RGB images based on detection method. For the non-key frames, the objects are tracked based on transformation information calculated on motion vector. In order to combine the detection results and the tracking results, data association is performed for the key frames based on Hungarian algorithm. Evaluations on a video dataset show that our proposed algorithm achieves better efficiency and comparable accuracy than the previous algorithm.
机译:多个对象跟踪是计算机视野领域的一个重要任务。在传统的跟踪算法中,需要频繁的检测来实现良好的跟踪性能,这使得处理耗时耗时并且无法在实时应用中应用。由于相邻的帧是高度相关的并且可以直接从压缩视频中提取相关的运动矢量而无需额外计算,我们呈现了一种基于相关运动矢量的快速跟踪算法,以降低检测频率。在所提出的算法中,视频被分成密钥和非关键帧。对于关键帧,基于检测方法在RGB图像上检测对象。对于非关键帧,基于在运动向量上计算的变换信息跟踪对象。为了结合检测结果和跟踪结果,对基于匈牙利算法的关键帧执行数据关联。视频数据集的评估表明,我们所提出的算法比以前的算法更好地实现了更好的效率和可比性。

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