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Curiosity-Based Learning Algorithm for distributed interactive sculptural systems

Matthew T. K. Chan, Rob Gorbet, Philip Beesley, Dana Kulić

发表年份
2015
引用次数
18

摘要

The ability to engage human observers is a key requirement for both social robots and the arts. In this paper, we propose an approach for adapting the Intelligent Adaptive Curiosity learning algorithm to distributed interactive sculptural systems. This Curiosity-Based Learning Algorithm (CBLA) allows the system to learn about its own mechanisms and its surroundings through self-experimentation and interaction. A novel formulation using multiple agents as learning subsets of the system that communicate through shared input variables enables us to scale to a much larger system with diverse types of sensors and actuators. Experiments on a prototype interactive sculpture demonstrate the exploratory patterns of the CBLA and collective learning behaviours through the integration of multiple learning agents.

关键词

CuriosityComputer scienceHuman–computer interactionKey (lock)RobotArtificial intelligence

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