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Compressed Sensing With Unknown Orientation
In compressed sensing, the idea is that you want to efficiently sense the environment in order to infer something. With deep learning, with generative models specifically, we notice that actualGenerative models provide a way of parmetrizing the space of signals of interest using basically the elatent space of this model. So and specifically, if you cannot tractably represent the signal, in this case, lets the images, if you can’t represent them, represent the prior genitive models provide for compressency.