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For human-like models, train on human-like tasks

  • Behavioral and Brain Sciences
  • Cambridge University Press
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Bowers et al. express skepticism about deep neural networks (DNNs) as models of human vision due to DNNs' failures to account for results from psychological research. We argue that to fairly assess DNNs, we must first train them on more human-like tasks which we hypothesize will induce more human-like behaviors and representations.

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DOI
10.1017/s0140525x23001516
OpenAlex
W4389397732
Document type
article
Language
EN
Source
Behavioral and Brain Sciences
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