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Detection of infrastructure manipulation with knowledge-based video surveillance

机译:基于知识的视频监控的基础设施操纵检测

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We are living in a world dependent on sophisticated technical infrastructure. Malicious manipulation of such critical infrastructure poses an enormous threat for all its users. Thus, running a critical infrastructure needs special attention to log the planned maintenance or to detect suspicious events. Towards this end, we present a knowledge-based surveillance approach capable of logging visual observable events in such an environment. The video surveillance modules are based on appearance-based person detection, which further is used to modulate the outcome of generic processing steps such as change detection or skin detection. A relation between the expected scene behavior and the underlying basic video surveillance modules is established. It will be shown that the combination already provides sufficient expressiveness to describe various everyday situations in indoor video surveillance. The whole approach is qualitatively and quantitatively evaluated on a prototypical scenario in a server room.
机译:我们居住在依赖复杂的技术基础设施的世界。对这种关键基础设施的恶意操纵对其所有用户构成了巨大的威胁。因此,运行关键的基础架构需要特别注意来记录计划的维护或检测可疑事件。为此,我们介绍了一种基于知识的监视方法,能够在这种环境中记录视觉可观察事件。视频监控模块基于基于外观的人员检测,其进一步用于调节通用处理步骤的结果,例如改变检测或皮肤检测。建立了预期场景行为与底层基本视频监控模块之间的关系。将表明,该组合已经提供了足够的表现力来描述室内视频监控的各种日常情况。整个方法是在服务器室中的原型方案上定性和定量评估。

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