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On synaptic learning rules for spiking neurons - with Friedemann Zenke - #11
Season 1 · Episode 11

On synaptic learning rules for spiking neurons - with Friedemann Zenke - #11

Theoretical Neuroscience Podcast · Gaute Einevoll

April 27, 20241h 30m

Show Notes

Today's AI is largely based on supervised learning of neural networks using the backpropagation-of-error synaptic learning rule. This learning rule relies on differentiation of continuous activation functions and is thus not directly applicable to spiking neurons.

Today's guest has developed the algorithm SuperSpike to address the problem. He has also recently developed a biologically more plausible learning rule based on self-supervised learning. We talk about both.