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#041 - Biologically Plausible Neural Networks - Dr. Simon Stringer

Machine Learning Street Talk (MLST)

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Exploring Invariance in Biologically Plausible Neural Networks

This chapter explores advanced neural network concepts, specifically continuous transformation learning and trace learning. It highlights how biologically realistic learning rules enable the recognition of objects from diverse viewpoints, fostering invariant representations for one-shot recognition across various transformations.

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