3min chapter

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#114 - Secrets of Deep Reinforcement Learning (Minqi Jiang)

Machine Learning Street Talk (MLST)

CHAPTER

The Importance of Recommendation in Machine Learning

The regret in machine learning is a measure of learning potential. In reinforcement learning there's a neural network that's co-trained with your policy network and it predicts the future return from a given state. We essentially just look at the average per time step error in the value prediction for a given environment to see how well an optimal performer performs on held out tasks. There are many different metrics that all seemed to be good ways of prioritizing different environment settings for training they all seem to work in to different extents in different environments.

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