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Learning to synthesize:robust phase retrieval at low photon counts

         

摘要

The quality of inverse problem solutions obtained through deep learning is limited by the nature of the priors learned from examples presented during the training phase.Particularly in the case of quantitative phase retrieval,spatial frequencies that are underrepresented in the training database,most often at the high band,tend to be suppressed in the reconstruction.Ad hoc solutions have been proposed,such as pre-amplifying the high spatial frequencies in the examples;however,while that strategy improves the resolution,it also leads to high-frequency artefacts,as well as low-frequency distortions in the reconstructions.Here,we present a new approach that learns separately how to handle the two frequency bands,low and high,and learns how to synthesize these two bands into full-band reconstructions.We show that this“learning to synthesize”(LS)method yields phase reconstructions of high spatial resolution and without artefacts and that it is resilient to high-noise conditions,e.g.,in the case of very low photon flux.In addition to the problem of quantitative phase retrieval,the LS method is applicable,in principle,to any inverse problem where the forward operator treats different frequency bands unevenly,i.e.,is ill-posed.

著录项

  • 来源
    《光:科学与应用(英文版)》 |2020年第1期|1657-1672|共16页
  • 作者单位

    Department of Electrical Engineering and Computer Science;

    Massachusetts Institute of Technology;

    Cambridge;

    MA 02139;

    USA;

    Sensebrain Technology Limited LLC;

    2550 N 1st Street;

    Suite 300;

    San Jose;

    CA 95131;

    USA;

    Omnisens SA;

    Riond Bosson 3;

    1110 Morges;

    VD;

    Switzerland;

    Department of Mechanical Engineering;

    Massachusetts Institute of Technology;

    Cambridge;

    MA 02139;

    USA;

    Singapore-MIT Alliance for Research and Technology(SMART)Centre;

    Singapore 117543;

    Singapore;

  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 数学分析;
  • 关键词

    synthesize; bands; phase;

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