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Toy data sets for density estimation and conditional generative flow

This is code for a handful of artificial toy data sets we created to evaluate (conditional) invertible neural networks and related methods. Each data set provides a prior distribution over data X, and a forward process that maps X to observations Y in a many-to-one manner. The inverse problem of finding X given an observation Y is thus an ambiguous and non-trivial task.

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Code for artificial toy data sets used to evaluate (conditional) invertible neural networks and related methods

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