2min 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

Parometer Sharing

Parometer sharing seems to help tou just make your matrices larger, but share them across the across the demadules. I don't quite get like the idea behind there it's strange, isn't it? Because it's kind of similar to the way siamese networks work, but, you know, rather than happening in parallel, its happening in series. So why we're doing the same thing many, many times be beneficial? And why could you not short cut a mean, i suppose a neural network is like a computer programm, isn’t it?

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