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Meta-learning as a principle for human-like visual representations
arXiv:2606.28399v1 Announce Type: new Abstract: The structure of human visual representations underpins our capacity for adaptive behaviour. While pretrained neural networks model human visual representations with unprecedented success, a large discrepancy remains. We propose one reason: these networks optimise a single fixed objective, whereas human representations must support open-ended tasks. We hypothesise this flexibility arises from meta-learning (learning to learn), a pressure shaping re...
arXiv cs.CV
·Can Demircan, Marcel Binz, Alireza Modirshanechi, Eric Schulz
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