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Automatic Behavior Understanding in Crisis Response Control Rooms

机译:危机响应控制室中的自动行为理解

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This paper addresses the problem of automatic behavior understanding in smart environments. Automatic behavior understanding is defined as the generation of semantic event descriptions from machine perception. Outputs from available perception modalities can be fused into a world model with a single spatiotemporal reference frame. The fused world model can then be used as input by a reasoning engine that generates semantic event descriptions. We use a newly developed annotation tool to generate hypothetical machine perception outputs instead. The applied reasoning engine is based on fuzzy metric temporal logic (FMTL) and situation graph trees (SGTs), promising and universally applicable tools for automatic behavior understanding. The presented case study is automatic behavior report generation for staff training purposes in crisis response control rooms. Various group formations and interaction patterns are deduced from person tracks, object information, and information about gestures, body pose, and speech activity.
机译:本文解决了在智能环境中自动了解行为的问题。自动行为理解被定义为从机器感知中生成语义事件描述。可用感知方式的输出可以融合到具有单个时空参考框架的世界模型中。然后,融合的世界模型可以被生成语义事件描述的推理引擎用作输入。我们改用新开发的注释工具来生成假设的机器感知输出。应用的推理引擎基于模糊度量时间逻辑(FMTL)和情况图树(SGT),它们是用于自动行为理解的有前途且普遍适用的工具。本案例研究是在危机响应控制室为员工培训目的而自动生成行为报告。从人的踪迹,对象信息以及有关手势,身体姿势和语音活动的信息,可以推断出各种小组形式和互动模式。

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