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Deep S3^3PR: Simultaneous Source Separation and Phase Retrieval Using Deep Generative Models

Abstract

This paper introduces and solves the simultaneous source separation and phase retrieval (S3^3PR) problem. S3^3PR is an important but largely unsolved problem in a number application domains, including microscopy, wireless communication, and imaging through scattering media, where one has multiple independent coherent sources whose phase is difficult to measure. In general, S3^3PR is highly under-determined, non-convex, and difficult to solve. In this work, we demonstrate that by restricting the solutions to lie in the range of a deep generative model, we can constrain the search space sufficiently to solve S3^3PR.

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