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PtyGenography: using generative models for regularization of the phase retrieval problem

2025-02-03Unverified0· sign in to hype

Selin Aslan, Tristan van Leeuwen, Allard Mosk, Palina Salanevich

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Abstract

In phase retrieval and similar inverse problems, the stability of solutions across different noise levels is crucial for applications. One approach to promote it is using signal priors in a form of a generative model as a regularization, at the expense of introducing a bias in the reconstruction. In this paper, we explore and compare the reconstruction properties of classical and generative inverse problem formulations. We propose a new unified reconstruction approach that mitigates overfitting to the generative model for varying noise levels.

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