Inside TensorFlow - TF-Agents

Inside TensorFlow - TF-Agents

TensorFlow via YouTube Direct link

Bandits vs RL

13 of 19

13 of 19

Bandits vs RL

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Inside TensorFlow - TF-Agents

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  1. 1 Intro
  2. 2 Supervised learning is not enough
  3. 3 Differences with supervised learning
  4. 4 Typical supervised learning
  5. 5 Typical reinforcement learning
  6. 6 Measuring the reliability of RL algorithms
  7. 7 Playing Breakout faster in TF
  8. 8 Learnable policy
  9. 9 Policy Saver
  10. 10 Available agents
  11. 11 TF-Agents distributed collection
  12. 12 Distributed architecture
  13. 13 Bandits vs RL
  14. 14 A/B testing
  15. 15 Multi-armed bandits
  16. 16 Bandit agents
  17. 17 Recommender systems
  18. 18 TF-Agents: Roadmap
  19. 19 TF-Agents developer investment

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