LEARNING
Data-Driven Imitation Learning for a Shopkeeper Robot with Periodically Changing Product Information
Malcolm Doering, Dražen Brščić, Takayuki Kanda
- 发表年份
- 2021
- 引用次数
- 7
- 访问权限
- 开放获取
摘要
Data-driven imitation learning enables service robots to learn social interaction behaviors, but these systems cannot adapt after training to changes in the environment, such as changing products in a store. To solve this, a novel learning system that uses neural attention and approximate string matching to copy information from a product information database to its output is proposed. A camera shop interaction dataset was simulated for training/testing. The proposed system was found to outperform a baseline and a previous state of the art in an offline, human-judged evaluation.
关键词
ImitationComputer scienceRobotProduct (mathematics)String (physics)Artificial intelligenceMatching (statistics)Baseline (sea)Service (business)Machine learning
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