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A Two Formal Languages Based Model for Representing Human Activities

机译:基于两种形式语言的人类活动模型

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Within this paper, we present a novel method for view-independent simple human activity recognition from video frames. In order to tackle the problem, we are going to reduce the number of frames produce by a video sequence, since we are positive that we can identify activities from sparsely sampled sequence of body poses. Then we will use a cooperative set of formal languages. Named SOMA and KINISIS language respectively. SOMA language represents various information regarding the human body (state) in a frame and will assign to it a unique timestamp. While KINISIS language is a sequence based formal language that is going to use the information extracted from SOMA language and segment simple activities into separate actions and then correctly identify each one of them.
机译:在本文中,我们提出了一种新的方法,用于从视频帧中进行与视图无关的简单人类活动识别。为了解决该问题,我们将减少视频序列产生的帧数,因为我们确信可以从稀疏采样的身体姿势序列中识别活动。然后,我们将使用一组合作的形式语言。分别命名为SOMA和KINISIS语言。 SOMA语言在一个帧中表示有关人体(状态)的各种信息,并将为其分配唯一的时间戳。 KINISIS语言是一种基于序列的形式语言,它将使用从SOMA语言中提取的信息并将简单的活动划分为单独的动作,然后正确地识别每个动作。

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