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Recognition of Human Actions using Edit Distance on Aclet Strings

机译:使用编辑距离对ACLET字符串的人类行动识别

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摘要

In this paper we propose a novel method for human action recognition based on string edit distance. A two layer representation is introduced in order to exploit the temporal sequence of the events: a first representation layer is obtained by using a feature vector obtained from depth images. Then, each action is represented as a sequence of symbols, where each symbol corresponding to an elementary action (aclet) is obtained according to a dictionary previously defined during the learning phase. The similarity between two actions is finally computed in terms of string edit distance, which allows the system to deal with actions showing different length as well as different temporal scales. The experimentation has been carried out on two widely adopted datasets, namely the MIVIA and the MHAD datasets, and the obtained results, compared with state of the art approaches, confirm the effectiveness of the proposed method.
机译:本文提出了一种基于串编辑距离的人为行动识别的新方法。引入了两层表示以利用事件的时间序列:通过使用从深度图像获得的特征向量获得第一表示层。然后,每个动作被表示为一系列符号,其中根据先前在学习阶段定义的字典获得对应于基本动作(Aclet)的每个符号。最终在串编辑距离方面最终计算了两个动作之间的相似性,这允许系统处理显示不同长度的动作以及不同的时间尺度。该实验已经在两种广泛采用的数据集中进行,即Mivia和MHAD数据集,与现有技术方法相比,获得的结果,确认了所提出的方法的有效性。

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