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Online Analysis of Hierarchical Events in Meetings

机译:会议中的分层事件在线分析

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Automatic online analysis of meetings is very important from three points of view: serving as an important archive of a meeting, understanding human interaction processes, and providing the attentive services based on the meeting situation for participants. Based on this view, this paper presents principle and implementation of online analysis of hierarchical events in meeting scenario. A hierarchical dynamic Bayesian network modeling different levels of events is designed. In this model, the recognition of low-level events is supervised by high-level events Rao-Blackwellized particle filter is proposed for on-line inference for the hierarchical dynamic Bayesian network. Situation events and four sorts of interaction events in meeting scenario are detected and recognized. Experimental results show that our approach can detect and recognize multi-layer semantic events in dynamic environment. Comparing with previous methods of meeting analysis, our approach supports online probabilistic inference for activities at different layers in meeting scenario.
机译:从三个观点来看,会议的自动在线分析非常重要:作为会议的重要档案,了解人类互动过程,并根据参与者的会议情况提供细心服务。基于这一观点,本文提出了在会议场景中的分层事件在线分析的原理和实施。设计了一种分层动态贝叶斯网络,设计了不同级别的事件。在该模型中,对低级事件的识别由高级事件进行监督RAO-Blackwellized粒子滤波器,用于分层动态贝叶斯网络的在线推断。检测和识别出会见情景中的情况事件和四种交互事件。实验结果表明,我们的方法可以在动态环境中检测和识别多层语义事件。与以往的会议分析方法相比,我们的方法支持在会议场景中对不同层次的活动的在线概率推断。

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