2019
DOI: 10.1007/978-3-030-23563-5_32
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Learning User Preferences via Reinforcement Learning with Spatial Interface Valuing

Abstract: Interactive Machine Learning is concerned with creating systems that operate in environments alongside humans to achieve a task. A typical use is to extend or amplify the capabilities of a human in cognitive or physical ways, requiring the machine to adapt to the users' intentions and preferences. Often, this takes the form of a human operator providing some type of feedback to the user, which can be explicit feedback, implicit feedback, or a combination of both. Explicit feedback, such as through a mouse clic… Show more

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