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🤖Reinforcement Learning Foundations

Go from zero to deep RL in four lessons. You will formalize sequential decision-making as a Markov Decision Process, solve small MDPs exactly with dynamic programming, implement Q-learning and SARSA from scratch, and understand DQN, policy gradients, actor-critic, and PPO well enough to use them in real projects.

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Lessons in order

  1. 1
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    Markov Decision Processes
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  2. 2
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    Dynamic Programming: Value and Policy Iteration
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  3. 3
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    Monte Carlo, TD, and Q-Learning
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  4. 4
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    Policy Gradients and Deep RL
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