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Leveraging Hidden Structure in Self-Supervised Learning

2021-06-30 13:35:36
Emanuele Sansone

Abstract

This work considers the problem of learning structured representations from raw images using self-supervised learning. We propose a principled framework based on a mutual information objective, which integrates self-supervised and structure learning. Furthermore, we devise a post-hoc procedure to interpret the meaning of the learnt representations. Preliminary experiments on CIFAR-10 show that the proposed framework achieves higher generalization performance in downstream classification tasks and provides more interpretable representations compared to the ones learnt through traditional self-supervised learning.

Abstract (translated)

URL

https://arxiv.org/abs/2106.16060

PDF

https://arxiv.org/pdf/2106.16060.pdf


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