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Statistical Reinforcement Learning

- Modern Machine Learning Approaches

Om Statistical Reinforcement Learning

Reinforcement learning (RL) is a framework for decision making in unknown environments based on a large amount of data. Several practical RL applications for business intelligence, plant control, and gaming have been successfully explored in recent years. Providing an accessible introduction to the field, this book covers model-based and model-free approaches, policy iteration, and policy search methods. It presents illustrative examples and state-of-the-art results, including dimensionality reduction in RL and risk-sensitive RL. The book provides a bridge between RL and data mining and machine learning research.

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  • Språk:
  • Engelska
  • ISBN:
  • 9781439856895
  • Format:
  • Inbunden
  • Sidor:
  • 206
  • Utgiven:
  • 16. mars 2015
  • Mått:
  • 241x164x16 mm.
  • Vikt:
  • 448 g.
  Fri leverans
Leveranstid: 2-4 veckor
Förväntad leverans: 18. december 2024
Förlängd ångerrätt till 31. januari 2025

Beskrivning av Statistical Reinforcement Learning

Reinforcement learning (RL) is a framework for decision making in unknown environments based on a large amount of data. Several practical RL applications for business intelligence, plant control, and gaming have been successfully explored in recent years. Providing an accessible introduction to the field, this book covers model-based and model-free approaches, policy iteration, and policy search methods. It presents illustrative examples and state-of-the-art results, including dimensionality reduction in RL and risk-sensitive RL. The book provides a bridge between RL and data mining and machine learning research.

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