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Phase retrieval for imaging problems
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Phase retrieval for imaging problems
classification
math.OC
keywords
imagingproblemsphaseretrievalalgorithmsassumptionsconvergenceconvex
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We study convex relaxation algorithms for phase retrieval on imaging problems. We show that structural assumptions on the signal and the observations, such as sparsity, smoothness or positivity, can be exploited to both speed-up convergence and improve recovery performance. We detail experimental results in molecular imaging problems simulated from PDB data.
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