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Emotional Empathy Model For Robot Partners Using Recurrent Spiking Neural Network Model With Hebbian-Lms Learning

机译:使用Hebbian-Lms学习的递归尖峰神经网络模型的机器人伙伴情感同情模型

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This paper discusses the development of an emotion model for robot partner system. In our previous studies, we have focused only on the robot emotional state. However, the emotional state of the other party is also an important factor for smooth conversation in human society. Therefore, the robot partner has two emotional structures for human: empathy and robot emotion. First, human empathy uses a perceptual based emotion model to know the human emotional state based on the sensory information. Next, we propose a recurrent simple spike response model to improve the robot emotional model, and we apply ebbian-LMS?learning to modify the weights in the spiking neural network. The robot emotional state is calculated by using the human emotional information, internal and external information. The robot partner can use the emotional results to control the facial and gesture expression. The utterance style is also changed by the robot emotional state. As a result, the robot partner can interact emotionally and naturally with human. First, we explain the related works and the development of the robot partner Phonoid-C? Next, we define the architecture of the emotional model to realize emotional empathy towards human. Then, we discuss the algorithms and the methods for developing the emotional model. Finally, we show experimental results of the proposed method, and discuss the effectiveness of the proposed structure.
机译:本文讨论了机器人伙伴系统的情感模型的开发。在我们以前的研究中,我们仅关注机器人的情绪状态。但是,另一方的情绪状态也是人类社会畅所欲言的重要因素。因此,机器人伴侣具有两种对人的情感结构:共情和机器人情感。首先,人的同理心使用基于感知的情感模型,根据感官信息了解人的情感状态。接下来,我们提出了一个循环的简单尖峰响应模型来改善机器人的情绪模型,并应用ebbian-LMS学习来修改尖峰神经网络中的权重。机器人的情绪状态是通过使用人类的情绪信息,内部和外部信息来计算的。机器人伙伴可以使用情感结果来控制面部表情和手势表情。说话风格也因机器人的情绪状态而改变。结果,机器人伙伴可以与人进行情感上自然的互动。首先,我们说明相关的工作以及机器人合作伙伴Phonoid-C的发展。接下来,我们定义情感模型的架构,以实现对人类的情感共鸣。然后,我们讨论了开发情感模型的算法和方法。最后,我们展示了所提出方法的实验结果,并讨论了所提出结构的有效性。

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