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Personalizing a Service Robot by Learning Human Habits from Behavioral Footprints
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作者 Kun Li Max Q.-H.Meng 《Engineering》 SCIE EI 2015年第1期79-84,共6页
For a domestic personal robot, personalized services are as important as predesigned tasks, because the robot needs to adjust the home state based on the operator's habits. An operator's habits are composed of... For a domestic personal robot, personalized services are as important as predesigned tasks, because the robot needs to adjust the home state based on the operator's habits. An operator's habits are composed of cues, behaviors, and rewards. This article introduces behavioral footprints to describe the operator's behaviors in a house, and applies the inverse reinforcement learning technique to extract the operator's habits, represented by a reward function. We implemented the proposed approach with a mobile robot on indoor temperature adjustment, and compared this approach with a baseline method that recorded all the cues and behaviors of the operator. The result shows that the proposed approach allows the robot to reveal the operator's habits accurately and adjust the environment state accordingly. 展开更多
关键词 个人机器人 个性化服务 学习技术 行为 人类 移动机器人 操作者 预先设计
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