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A Flow Matching Framework for Neural Representational Dissimilarity

Neural representational dissimilarity quantifies differences between neural response distributions, and is essential for comparing neural codes across stimuli, brain areas, tasks, and models. Commonly used distance metrics involve different assumptions and are estimated with separate methods. Here, we show that a variety of distance metrics can be unified under a flow matching framework developed…

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Google is launching AI chips into space to see if they survive up there

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