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Deep Image Prior - CVF Open Access

Deep Image PriorDmitry UlyanovSkolkovo Institute of Scienceand Technology, VedaldiUniversity of LempitskySkolkovo Institute of Scienceand Technology convolutional networks have become a populartool for Image generation and restoration. Generally, theirexcellent performance is imputed to their ability to learn re-alistic Image priors from a large number of example this paper, we show that, on the contrary, thestructureofa generator network is sufficient to capture a great deal oflow-level Image statisticsprior to any learning. In orderto do so, we show that a randomly-initialized neural net-work can be used as a handcrafted Prior with excellent re-sults in standard inverse problems such as denoising, super-resolution, and inpainting.

common paradigm of training a ConvNet on a large dataset of example images, we fit a generator network to a single degraded image. In this scheme, the network weights serve as a parametrization of the restored image. The weights are randomly initialized and fitted to maximize their likelihood given a specific degraded image and a task ...

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