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You Are Doing Great! Only One Rep Left: An Affect-Aware Social Robot for Exercising

Mingyang Shao, Silas Franco dos Reis Alves, Omar Ismail, Xinyi Zhang, Goldie Nejat, B. Benhabib

Year
2019
Citations
31

Abstract

Regular exercise has immediate and long-term benefits for people of all ages. Maintaining an adequate amount of daily exercise is important to overall health and wellbeing. Our research focuses on the development of a socially assistive robot, Salt, to facilitate different upper body exercises. During the exercises, the robot is uniquely able to autonomously detect a user's affect and engagement as well as measure their heart rate to prevent overexertion. A robot emotion model using an n th order Markov Chain is used to determine the robot's appropriate emotions during interactions based on user affect and engagement, and its own emotion history. Human-robot interaction experiments were conducted to investigate perceived usefulness and acceptance. The results showed that most users were engaged and had positive valence towards the robot during the interactions. Post-experiment questionnaire results also showed they were able to detect the robot's emotions and enjoyed interacting with it.

Keywords

Affect (linguistics)RobotValence (chemistry)Social robotBehavior-based roboticsPsychologyHuman–robot interactionApplied psychologyComputer scienceHuman–computer interaction

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