this post was submitted on 07 Oct 2023
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Stable Diffusion

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They say you shouldn't train on synthetic data, still worth a shot.

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[โ€“] [email protected] 6 points 1 year ago (1 children)

I feel like it's similar to image compression, you lose a bit every iteration. Consider that the original model was weighted towards common aspects across the training set. Even with some creative prompting for your source images you could unintentionally introduce bias and reduce variations across images generated by your new model. You also get any mistakes or inconsistencies baked in.

[โ€“] [email protected] 3 points 1 year ago

As long as the distortions aren't noticeable, no one can complain.