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A Fast and Robust Re-Identification Method for Large Video Data

机译:一种快速,鲁棒的大型视频数据重新识别方法

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This paper proposes a fast and robust person re-identification method from videos. Naive re-identification methods may falsely recognize images of a same person as different people due to continuous change of environments around cameras even in a same place. This failure causes multiple result sets of images of different people, which should be one. This paper addresses the problem to propose a method that enhances the robustness and computation speed of the re-identification. The robustness of the re-identification is improved by employing video tracking technologies. The speed of that is increased with a Luigi index, which is a data structure for fast similarity search. Experimental results showed that the proposed method shortens execution time by 10% and reduces the number of redundant result sets by a factor of 12.6 compared to the naive one.
机译:本文提出了一种基于视频的快速,鲁棒的人员识别方法。由于相机周围环境的连续变化(即使在同一位置),幼稚的重新识别方法可能会错误地将同一个人的图像识别为不同的人。此故障会导致多个不同人的图像结果集,这应该是一个。本文针对该问题提出了一种提高重识别的鲁棒性和计算速度的方法。通过使用视频跟踪技术,可以提高重新识别的鲁棒性。 Luigi索引提高了它的速度,该索引是用于快速相似性搜索的数据结构。实验结果表明,与原始方法相比,该方法将执行时间缩短了10%,并将冗余结果集的数量减少了12.6倍。

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