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Exploring context information for inter-camera multiple target tracking

机译:探索相机间多目标跟踪的上下文信息

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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,我们向相互相互作用的多目标跟踪提供了一种具有非重叠视图的多个目标跟踪的新解决方案。当他们从一个相机移动到另一个相机时,人们的身份被维持。而不是跨越摄像机的人的快照,我们主要探讨视频中的上下文信息可用于相互相互作用的跟踪。我们在本文中介绍了两种上下文信息,时空上下文和相对外观上下文。时空上下文表示用于学会目标特定外观模型的歧视性外观学习的样本的方法,以便区分不同的人彼此。相对外观上下文模型用于步行靠近的人们的对象外观相似性。相对外观模型有助于消除跨越摄像机的个人外观。我们显示有关相互相互间跟踪的上下文信息,显示出改进的性能。与最先进的方法相比,我们的方法在两个拥挤的场景中实现了有希望的结果。

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