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Is this not just adversarial training/generation, but instead of using it to improve the model they just allow it to mess it up? Sorry, blanking on the exact term. My understanding was that some GANs are specifically trained on stuff like this to improve their abilites to differentiate.
Pretty much
Its on the same path as GAN but there is no adversarial network feedback - Nothing telling the generative ai it is generating bad data
Seems like GAN without the benefits for training models (which is what they wanted it seems. To mess with the training data)
I dont see how this becomes permanent since the models are already trained. Maybe if the technique becomes easy for artists to apply to their digital works and makes it into the training data for the next models