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Masking Strategies for Image Manifolds
[article]
2016
arXiv
pre-print
We consider the problem of selecting an optimal mask for an image manifold, i.e., choosing a subset of the pixels of the image that preserves the manifold's geometric structure present in the original data. Such masking implements a form of compressive sensing through emerging imaging sensor platforms for which the power expense grows with the number of pixels acquired. Our goal is for the manifold learned from masked images to resemble its full image counterpart as closely as possible. More
arXiv:1606.04618v1
fatcat:bjahqbxd3bcnfcxsy2opvlos2i