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contravariance-theory-strong-alignment-minimal-solutions

Theory formalizing contravariance in NeuroAI: weak alignment of network representations via affine mappings guarantees strong alignment of privileged axes, and alignment zippers up the network hierarchy. Shows convergent evolution between artificial and brain networks is inevitable for sufficiently hard tasks. Use when working with neuroai, brain-alignment, dnn-brain-comparison.

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hiyenwong/ai_collection
Last source activity
July 11, 2026 at 14:13
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English
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