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Tracklet and Signature Representation for Multi-Shot Person Re-Identification

机译:多射击人重新识别的Tracklet和签名表示

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Video surveillance has become more and more important in many domains for their security and safety. Person Re-Identification (Re-ID) is one of the most interesting subjects in this area. The Re-ID system is divided into two main stages: i) extracting feature representations to construct a person's appearance signature and ii) establishing the correspondence/matching by learning similarity metrics or ranking functions. However, appearance based person Re-Idis a challenging task due to similarity of human's appearance and visual ambiguities across different cameras. This paper provides a representation of the appearance descriptors, called signatures, for multi-shot Re-ID First, we will present the tracklets, i.e trajectories of persons. Then, we compute the signature and represent it based on the approach of Part Appearance Mixture (PAM). An evaluation of the quality of this signature representation is also described in order to essentially solve the problems of high variance in a person's appearance, occlusions, illumination changes and person's orientation/pose. To deal with variance in a person's appearance, we represent it as a set of multi-modal feature distributions modeled by Gaussian Mixture Model (GMM). Experiments and results on two public datasets and on our own dataset show good performance.
机译:在许多域中,视频监控在其安全和安全的许多领域都变得越来越重要。人重新识别(RE-ID)是该地区最有趣的科目之一。重新ID系统分为两个主要阶段:i)提取特征表示来构建一个人的外观签名和II)通过学习相似度量或排名函数来建立对应/匹配。然而,由于人类出现的外观和视觉模糊,跨不同摄像机的视觉模糊性的相似性,外观基于人的人重新确定了一个具有挑战性的任务。本文提供了外观描述符的表示,称为签名,用于多拍RE-ID首先,我们将介绍TRACKLET,即人的轨迹。然后,我们基于部分外观混合物(PAM)的方法来计算签名并代表它。还描述了对该签名表示的质量的评估,以便基本上解决了人类外观,闭塞,照明变化和人的定向/姿势中高方差的问题。为了处理人们的外观方差,我们将其代表为由高斯混合模型(GMM)建模的一组多模态特征分布。两个公共数据集的实验和结果以及我们自己的数据集显示出良好的性能。

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