Reinforcement Learning and Deep RL Python Theory and Projects - Changing Policy Architecture

Reinforcement Learning and Deep RL Python Theory and Projects - Changing Policy Architecture

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The video tutorial discusses various policy architectures in reinforcement learning, including MLP, CNN, and RNN policies. It provides guidance on selecting the appropriate policy based on the task, such as using CNN for image-related tasks and RNN for textual tasks. The tutorial demonstrates how to modify the MLP policy architecture by changing the number of layers and neurons. It also covers the process of training the model with the updated architecture using the PPO algorithm and evaluates the model's performance, highlighting the importance of saving the best model for future use.

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OPEN ENDED QUESTION

3 mins • 1 pt

What new insight or understanding did you gain from this video?

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