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Exploring context information for inter-camera multiple target tracking

机译:探索上下文信息以实现摄像机间多目标跟踪

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In this paper, we present a new solution to inter-camera multiple target tracking with non-overlapping fields of view. The identities of people are maintained when they are moving from one camera to another. Instead of matching snapshots of people across cameras, we mainly explore what kind of context information from videos can be used for inter-camera tracking. We introduce two kinds of context information, spatio-temporal context and relative appearance context in this paper. The spatio-temporal context indicates a way of collecting samples for discriminative appearance learning where target-specific appearance models are learned to distinguish different people from each other. The relative appearance context models inter-object appearance similarities for people walking in proximity. The relative appearance model helps disambiguate individual appearance matching across cameras. We show improved performance with context information for inter-camera tracking. Our method achieves promising results in two crowded scenes compared with state-of-art methods.
机译:在本文中,我们提出了一种新的解决方案,可实现不重叠视场的摄像机间多目标跟踪。人们从一台摄像机移动到另一台摄像机时,他们的身份得以保留。我们主要研究视频中可以使用哪种类型的上下文信息进行摄像机间跟踪,而不是匹配摄像机之间的人员快照。本文介绍了两种上下文信息,时空上下文和相对外观上下文。时空上下文指示了一种收集样本以进行区分性外观学习的方法,其中学习了特定于目标的外观模型以区分不同的人。相对外观上下文对附近步行的人的对象间外观相似性进行建模。相对外观模型有助于消除相机之间的各个外观匹配的歧义。我们展示了用于摄像机间跟踪的上下文信息,性能得到了改善。与最先进的方法相比,我们的方法在两个拥挤的场景中取得了可喜的结果。

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