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An approach to detecting person's unwonted behavior for service robot

机译:一种服务机器人检测人的不正当行为的方法

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Detecting the person's unwonted behavior state timely and correctly in home environment for the service robot is a fundamental problem. This paper proposes an approach to this problem using the position and pose information as the features and the computing result of the CRF model as the judging gist. Firstly, a pose template based on position label is defined to reduce the dimension of the problem. Then, a space-time constrained CRF model is proposed by integrating the position information and pose features. Experiment results demonstrate that the model can run on a PC with high accuracy and is feasible to afford a judging gist to detect persons' unwonted behavior for service robot.
机译:一个基本的问题是在家庭环境中及时,正确地检测人的不良行为状态。本文提出了一种以位置和姿态信息为特征,以CRF模型的计算结果作为判断依据的方法。首先,定义基于位置标签的姿势模板以减小问题的范围。然后,通过整合位置信息和姿态特征,提出了一个时空约束的CRF模型。实验结果表明,该模型可以在PC机上高精度运行,为判断服务人员的不当行为提供了判断依据。

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