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Hands-On Q-Learning with Python

You're reading from   Hands-On Q-Learning with Python Practical Q-learning with OpenAI Gym, Keras, and TensorFlow

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Product type Paperback
Published in Apr 2019
Publisher Packt
ISBN-13 9781789345803
Length 212 pages
Edition 1st Edition
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Author (1):
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Nazia Habib Nazia Habib
Author Profile Icon Nazia Habib
Nazia Habib
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Table of Contents (14) Chapters Close

Preface 1. Section 1: Q-Learning: A Roadmap FREE CHAPTER
2. Brushing Up on Reinforcement Learning Concepts 3. Getting Started with the Q-Learning Algorithm 4. Setting Up Your First Environment with OpenAI Gym 5. Teaching a Smartcab to Drive Using Q-Learning 6. Section 2: Building and Optimizing Q-Learning Agents
7. Building Q-Networks with TensorFlow 8. Digging Deeper into Deep Q-Networks with Keras and TensorFlow 9. Section 3: Advanced Q-Learning Challenges with Keras, TensorFlow, and OpenAI Gym
10. Decoupling Exploration and Exploitation in Multi-Armed Bandits 11. Further Q-Learning Research and Future Projects 12. Assessments 13. Other Books You May Enjoy

Multi-armed bandit strategy overview

Let's go through a brief comparison of some popular action selection strategies. We'll focus on a few in particular:

  • Greedy strategy
  • Epsilon-greedy strategy
  • Upper confidence bound

Outside the AI space, reinforcement learning is often referred to as dynamic programming. Upper confidence bound is a strategy often used in the dynamic programming space in fields such as economics. It is based on the principle of optimism in the face of uncertainty and places a high priority on exploration.

Using upper confidence bound, we assume we are better off exploring our environment as much as we can and presuming that paths we have not seen will lead to high rewards. We'll see how this works in the following strategy selection sections.

Greedy...

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