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Keeping count: Leveraging temporal context to count heavily overlapping objects

机译:保持计数:利用时间上下文来计算高度重叠的对象

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When tracking and segmenting multiple objects under heavy occlusion, a large class of algorithms can greatly benefit from a preprocessing that reliably assesses the number of individuals in each cluster. This is a difficult task when relying on local information only, due to scarcity of training examples and lack of strongly predictive features. In this paper, we develop a deterministic graphical model to address the problem of counting the number of objects in each foreground region as global inference across the entire video sequence. We show that global inference improves over local predictions, and is able to produce an accurate and coherent output within an useful runtime.
机译:在严重遮挡下跟踪和分割多个对象时,一大类算法可以从可靠地评估每个群集中的个体数量的预处理中受益匪浅。当仅依靠本地信息时,这是一项艰巨的任务,这是因为培训示例稀缺并且缺乏强大的预测功能。在本文中,我们开发了确定性图形模型,以解决将每个前景区域中的对象数量作为整个视频序列中的全局推断的计数问题。我们表明,全局推理相对于局部预测而言有所改善,并且能够在有用的运行时中产生准确且连贯的输出。

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