2min chapter

Machine Learning Street Talk (MLST) cover image

Harri Valpola: System 2 AI and Planning in Model-Based Reinforcement Learning

Machine Learning Street Talk (MLST)

CHAPTER

Is It Possible to Optimize a Deep Neural Network to Model Base Reenforcement Learning?

We are using an other deep neral network which understands the imfl distribution. If you apply efficient planning techniques like gradient base planning, if the planning itself is a little bit inefficient, then you can get ay with that. But i think it's very dangerous to rely on using imperfect optimisation techniques to do model base reenforcement learning. So i'd rather fix the root course of the problem and then use the most efficient optimisation technique there is.

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