首页> 外文会议>IFIP TC 13 symposium on human-computer interaction >Artificial Emotion Generation Based on Personality, Mood, and Emotion for Life-Like Facial Expressions of Robots
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Artificial Emotion Generation Based on Personality, Mood, and Emotion for Life-Like Facial Expressions of Robots

机译:基于人格,情绪和情感的人工情感生成,为机器人的生活面部表达

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We can't overemphasize the importance of robot's emotional expressions as robots step into human's daily lives. So, the believable and socially acceptable emotional expressions of robots are essential. For such human-like emotional expression, we have proposed an emotion generation model considering personality, mood and history of robot's emotion. The personality module is based on the Big Five Model (OCEAN Model, Five Factor Model); the mood module has one dimension such as good or bad, and the emotion module uses the six basic emotions as defined by Ekman. Unlike most of the previous studies, the proposed emotion generation model was integrated with the Linear Dynamic Affect Expression Model (LDAEM), which is an emotional expression model that can make facial expressions similar to those of humans. So, both the emotional state and expression of robots can be changed dynamically.
机译:我们无法透明机器人情绪表达为机器人进入人类日常生活的重要性。因此,可信和社会可接受的机器人的情感表达至关重要。对于这样的人类的情感表达,我们提出了一种考虑人格,情绪和情绪历史的情感代表。人格模块基于五大模型(海洋模型,五因素模型);情绪模块有一个维度,如好坏,情感模块使用ekman定义的六种基本情绪。与以前的大多数研究不同,所提出的情感生成模型与线性动态影响表达式模型(LDAEM)集成在一起,这是一种情绪表达模型,可以使与人类类似的面部表情。因此,可以动态地改变机器人的情绪状态和表达。

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