2022 10th International Conference on Affective Computing and Intelligent Interaction (ACII) 2022
DOI: 10.1109/acii55700.2022.9953887
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Play with Emotion: Affect-Driven Reinforcement Learning

Abstract: This paper introduces a paradigm shift by viewing the task of affect modeling as a reinforcement learning (RL) process. According to the proposed paradigm, RL agents learn a policy (i.e. affective interaction) by attempting to maximize a set of rewards (i.e. behavioral and affective patterns) via their experience with their environment (i.e. context). Our hypothesis is that RL is an effective paradigm for interweaving affect elicitation and manifestation with behavioral and affective demonstrations. Importantl… Show more

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Cited by 2 publications
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