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  • title: Training self-supervised peptide sequence models on artificially chopped proteins
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            Training self-supervised peptide sequence models on artificially chopped proteins
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            Training self-supervised peptide sequence models on artificially chopped proteins

            Dec 2, 2022

            Speakers

            GS

            Gil Sadeh

            Speaker · 0 followers

            ZW

            Zichen Wang

            Speaker · 0 followers

            JG

            Jasleen Grewal

            Speaker · 0 followers

            About

            Representation learning for proteins has primarily focused on the global understanding of protein sequences regardless of their length. However, shorter proteins (known as peptides) take on distinct structures and functions compared to their longer counterparts. Unfortunately, there are not as many naturally occurring peptides available to be sequenced and therefore less peptide-specific data to train with. In this paper, we propose a new peptide data augmentation scheme, where we train peptide…

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