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BI 123 Irina Rish: Continual Learning

Brain Inspired

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Adaptive Adaption for Noura Net Learning

The work from two thousand 14 asstats paper motivated us to start looking into auxiliary variable approaches. It all comes from thejust trivial kind of equality constrained er that those activations or hidden units are, theyre equal to what to that linear functions of previousl a layer transformed by some non linarity. You can introduce extra auiliary variables, just the linear ones, and another one, another set on linar transformation of thesons of forse. And you can modify constrained aptimisation in to just like slagranc and whatever.

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