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Augmenting video surveillance footage with virtual agents for incremental event evaluation

机译:使用虚拟代理增强视频监控录像以进行增量事件评估

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摘要

The fields of segmentation, tracking and behavior analysis demand for challenging video resources to test, in a scalable manner, complex scenarios like crowded environments or scenes with high semantics. Nevertheless, existing public databases cannot scale the presence of appearing agents, which would be useful to study long-term occlusions and crowds. Moreover, creating these resources is expensive and often too particularized to specific needs. We propose an augmented reality framework to increase the complexity of image sequences in terms of occlusions and crowds, in a scalable and controllable manner. Existing datasets can be increased with augmented sequences containing virtual agents. Such sequences are automatically annotated, thus facilitating evaluation in terms of segmentation, tracking, and behavior recognition. In order to easily specify the desired contents, we propose a natural language interface to convert input sentences into virtual agent behaviors. Experimental tests and validation in indoor, street, and soccer environments are provided to show the feasibility of the proposed approach in terms of robustness, scalability, and semantics.
机译:分段,跟踪和行为分析领域要求具有挑战性的视频资源以可伸缩的方式测试复杂的场景,例如拥挤的环境或具有高语义的场景。但是,现有的公共数据库无法扩展出现代理的人数,这对于研究长期遮挡和人群很有用。此外,创建这些资源的成本很高,而且常常无法满足特定需求。我们提出了一种增强现实框架,以可扩展和可控的方式增加了图像序列在遮挡和人群方面的复杂性。可以使用包含虚拟代理的增强序列来增加现有数据集。此类序列会自动添加注释,从而有助于在细分,跟踪和行为识别方面进行评估。为了轻松指定所需的内容,我们提出了一种自然语言界面,可将输入的句子转换为虚拟座席行为。提供了在室内,街道和足球环境中进行的实验测试和验证,以从鲁棒性,可伸缩性和语义方面显示了该方法的可行性。

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