3min chapter

Machine Learning Street Talk (MLST) cover image

Exploring the Limits of Transfer Learning with a Unified Text-to-Text Transformer

Machine Learning Street Talk (MLST)

CHAPTER

Scale Is Going to Scale Better Than Training Steps

The biggest improvement was when they increased the size of their network. They did that not by changing anything in the intention heads, but by increasing the number of perameters in the feedforward layers. And they also did two times as many training steps. That gave them essentially three points of improvement, which is huge. I think what will happen is that you'll train this really large model, and then it'll just do like one pass through a letter, like, you know, it won't. It's quite interesting as well, because there are some weird things that happen when you increase the training size.

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