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Cognitive Development in Partner Robots for Information Support to Elderly People

机译:用于老年人信息支持的伙伴机器人中的认知发展

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This paper discusses an utterance system based on the associative memory of partner robots developed through interaction with people. Human interaction based on gestures is quite important to the expression of natural communication, and the meaning of gestures can be understood through intentional interactions with a human. We therefore propose a method for associative learning based on intentional interaction and conversation that can realize such natural communication. Steady-state genetic algorithms (SSGA) are applied in order to detect the human face and objects via image processing. Spiking neural networks are applied in order to memorize the spatio–temporal patterns of human hand motions and various relationships among the perceptual information that is conveyed. The experimental results show that the proposed method can refine the relationships among this varied perceptual information that can then inform an updated relationship to natural communication with a human. We also present methods of assisting memory and assessing a human's state.
机译:本文讨论了一种通过与人互动而开发的基于伙伴机器人的联想记忆的发声系统。基于手势的人际互动对于自然交流的表达非常重要,并且可以通过与人的有意互动来理解手势的含义。因此,我们提出了一种基于意图交互和对话的联想学习方法,可以实现这种自然的沟通。为了通过图像处理检测人脸和物体,应用了稳态遗传算法(SSGA)。应用尖峰神经网络是为了记住人类手运动的时空模式以及所传达的感知信息之间的各种关系。实验结果表明,所提出的方法可以改善这些变化的知觉信息之间的关系,然后可以告知人与自然沟通的更新关系。我们还介绍了辅助记忆和评估人的状态的方法。

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