2014 · 19 citations · 22 references
Artificial IntelligenceEngineeringSocially Assistive RobotCognitive RoboticsInterruption StrategyIntelligent SystemsCommunicationRobot BehaviorHumanrobot CollaborationRobot LearningCognitive ScienceHuman Agent InteractionIndividual ToleranceHuman-robot InteractionSocial ComputingAutomationPersonal RobotHuman-computer InteractionRobotics
People engaging in an activity usually has individual tolerance to be interrupted [1], [2]. Humans subconsciously adapt their behaviors to draw other one's attention and to get into a conversation based on their historical experiences, but robots often fail to be aware of humans' feeling and thus interrupt their users repeatedly. To endow service robots with such socially acceptable ability, we propose an online human-aware interactive learning framework in this paper, under which the robot personalizes its behaviors according to both observed user's attention and its conjecture about user's awareness of itself. To this purpose, the correlation between the robot's theory of awareness, user's attention and robot behavior are explored through reinforcement learning techniques. The conducted experiment shows that the robot can personalize its interruption strategy, and the optimal policies converged for at least 26 episodes.
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Explorations in engagement for humans and robots
Candace L. Sidner, Christopher Lee, Cory D. Kidd et al. · Artificial Intelligence · 2005 · 538 citations
Alan Lipman, Edward T. Hall · British Journal of Sociology · 1970 · 357 citations
Bilge Mutlu, Jodi Forlizzi · 2008 · 349 citations
Human-robot Collaborative Assembly, Engineering, Socially Assistive Robot +18