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  • title: Dynamic Inference with Neural Interpreters
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            Dynamic Inference with Neural Interpreters
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            Dynamic Inference with Neural Interpreters

            Dec 6, 2021

            Speakers

            NR

            Nasim Rahaman

            Speaker · 1 follower

            WG

            Waleed Gondal

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            SJ

            Shruti Joshi

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            About

            Modern neural network architectures can leverage large amounts of data to generalize well within the training distribution. However, they are less capable of systematic generalization to data drawn from unseen but related distributions, a feat that is hypothesized to require compositional reasoning and reuse of knowledge. In this work, we present Neural Interpreters, an architecture that factorizes inference in a self-attention network as a system of modules, which we call _functions_. Inputs to…

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            NeurIPS 2021

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