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

IEEE International Conference on Acoustics, Speech, and Signal Processing (ICASSP), 2020
Abstract

This paper introduces and solves the simultaneous source separation and phase retrieval (S3^3PR) problem. S3^3PR shows up in a number application domains, most notably computational optics, 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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