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An Autonomous Cognitive Empathy Model Responsive to Users' Facial Emotion Expressions

机译:响应用户面部情感表达的自主认知同理化模型

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Successful social robot services depend on how robots can interact with users. The effective service can be obtained through smooth, engaged, and humanoid interactions in which robots react properly to a user's affective state. This article proposes a novel Automatic Cognitive Empathy Model, ACEM, for humanoid robots to achieve longer and more engaged human-robot interactions (HRI) by considering humans' emotions and replying to them appropriately. The proposed model continuously detects the affective states of a user based on facial expressions and generates desired, either parallel or reactive, empathic behaviors that are already adapted to the user's personality. Users' affective states are detected using a stacked autoencoder network that is trained and tested on the RAVDESS dataset. The overall proposed empathic model is verified throughout an experiment, where different emotions are triggered in participants and then empathic behaviors are applied based on proposed hypothesis. The results confirm the effectiveness of the proposed model in terms of related social and friendship concepts that participants perceived during interaction with the robot.
机译:成功的社会机器人服务取决于机器人如何与用户互动。通过光滑,接合和人形相互作用可以获得有效服务,其中机器人对用户的情感状态正常地反应。本文提出了一种新型的自动认知同理化模型,用于人形机器人,通过考虑人类的情绪并适当地对他们回复他们来实现更长且更加接触的人机互动(HRI)。所提出的模型不断地基于面部表情来检测用户的情感状态,并产生所需的,并行或反应性,具有对用户的个性的平行或反应性的分象行为。使用堆叠的AutoEncoder网络检测用户的情感状态,该网络在RACDESS数据集上培训并测试。整个建议的移植模型在整个实验中验证,其中在参与者中触发不同的情绪,然后基于所提出的假设来应用异常行为。结果证实了拟议模型在与机器人互动期间感知的相关社会和友谊概念方面的有效性。

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