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This work addresses research in an area that is gaining popularity in the artificial intelligence and neural network communities. Reinforcement learning has become a primary paradigm of machine learning. It applies to problems in which an agent (such as a robot, a process controller, or an information-retrieval engine) has to learn how to behave given only information about the success of its current actions. This book is a collection of papers that address topics including the theoretical foundations of dynamic programming approaches, the role of prior knowledge, and methods for improving performance of reinforcement-learning techniques. These papers build on previous work and form a resource for students and researchers in the area.
- Format: Inbunden
- ISBN: 9780792397052
- Språk: Engelska
- Antal sidor: 292
- Utgivningsdatum: 1996-03-31
- Förlag: Kluwer Academic Publishers