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Maximum-likelihood refinement for coherent diffractive imaging

P. Thibault
•
M. Guizar-Sicairos
2012
  • journal article

Periodico
NEW JOURNAL OF PHYSICS
Abstract
We introduce the application of maximum-likelihood (ML) principles to the image reconstruction problem in coherent diffractive imaging. We describe an implementation of the optimization procedure for ptychography, using conjugate gradients and including preconditioning strategies, regularization and typical modifications of the statistical noise model. The optimization principle is compared to a difference map reconstruction algorithm. With simulated data important improvements are observed, as measured by a strong increase in the signal-to-noise ratio. Significant gains in resolution and sensitivity are also demonstrated in the ML refinement of a reconstruction from experimental x-ray data. The immediate consequence of our results is the possible reduction of exposure, or dose, by up to an order of magnitude for a reconstruction quality similar to iterative algorithms currently in use. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.
DOI
10.1088/1367-2630/14/6/063004
WOS
WOS:000306932200001
Archivio
http://hdl.handle.net/11368/2977496
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-84862627872
Diritti
metadata only access
Soggetti
  • Conjugate gradient

  • Diffractive imaging

  • Iterative algorithm

  • Map reconstruction

  • Optimization principl...

  • Optimization procedur...

  • Reconstruction proble...

  • Reconstruction qualit...

  • Simulated data

  • Statistical noise

  • X ray data

Web of Science© citazioni
247
Data di acquisizione
Mar 24, 2024
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