2min chapter

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

Machine Learning Street Talk (MLST)

CHAPTER

The Benefits of Concatenated Relu

A lot of your neuron can actually die they can zero out and then basically you lose like the capability to update the network. This was an issue underlying their model so what they do is they replaced the neurons that relu activations they replace it with something called a concatenated relu which is a krelu. They show that essentially now if you do this non-stationary Atari essentially you you just always recover like the original peak performance in that setting. So I'm very bullish on applying a lot of I think a lot of like the automatic curriculum learning methods for continuing learning.

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