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MC replicas sets: i.e. NNPDF ones (essentially), this is the easiest: just sample x and flavor with a sensible distribution, and then sample replica by sampling uniformly its ID
hessian sets: i.e. everything else, in this case in order to associate each sample to a "replica", I had sample a point in a space with dimension equal to the number of eigenvectors, from a multi-Gaussian, then combine the eigenvectors in that direction, and sample x and flavor with the same distribution of above
I believe this is fine, but it's much messier to sample from hessian sets, so everything else will be done for MC sets only.
Roadmap for closure and actual data implementation.
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