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  • title: Unsupervised Cross-Task Generalization via Retrieval Augmentation
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            Unsupervised Cross-Task Generalization via Retrieval Augmentation
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            Unsupervised Cross-Task Generalization via Retrieval Augmentation

            Nov 28, 2022

            Speakers

            BYL

            Bill Yuchen Lin

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            KT

            Kangmin Tan

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            CM

            Chris Miller

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            About

            Humans can perform unseen tasks by recalling relevant skills that are acquired previously and then generalizing them to the target tasks, even if there is no supervision at all. In this paper, we aim to improve such cross-task generalization ability of massive multi-task language models such as T0 (Sanh et al., 2021) in an unsupervised setting. We propose a retrieval-augmentation method named ReCross that takes a few unlabelled examples as queries to retrieve a small subset of upstream data and…

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