Self-Paced Contextual Reinforcement Learning

Pages: 513 - 529
Published: Jan 1, 2019
Abstract
Generalization and adaptation of learned skills to novel situations is a core requirement for intelligent autonomous robots. Although contextual reinforcement learning provides a principled framework for learning and generalization of behaviors across related tasks, it generally relies on uninformed sampling of environments from an unknown, uncontrolled context distribution, thus missing the benefits of structured, sequential learning. We...
Paper Details
Title
Self-Paced Contextual Reinforcement Learning
Published Date
Jan 1, 2019
Pages
513 - 529
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