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Multi-label version of SupConLoss #658
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I'd have to take a closer look at the paper. I'll leave this issue open in case someone wants to implement it. |
Thanks for the prompt reply! The supervised contrastive loss (SupCon) are defined below: And the multi-label supervised contrastive loss (MultiSupCon) are the following: where I looked into the
I have found the repo for the MultiSupCon loss. |
Hello, does this loss function apply to classification? |
This paper introduced a new loss function called
MultiSupCon
that allows us to gain knowledge about the degree of label overlap between pairs of samples. I was just wondering if it's possible to integrate this loss into your library?The text was updated successfully, but these errors were encountered: