4.7 Article

Demosaiced pixel super-resolution for multiplexed holographic color imaging

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SCIENTIFIC REPORTS
卷 6, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep28601

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资金

  1. Presidential Early Career Award for Scientists and Engineers (PECASE)
  2. Army Research Office (ARO) [W911NF-13-1-0419, W911NF-13-1-0197]
  3. ARO Life Sciences Division
  4. National Science Foundation (NSF) CBET Division Biophotonics Program
  5. NSF Emerging Frontiers in Research and Innovation (EFRI) Award
  6. NSF EAGER Award
  7. NSF INSPIRE Award
  8. NSF Partnerships for Innovation: Building Innovation Capacity (PFI:BIC) Program
  9. Office of Naval Research (ONR)
  10. Howard Hughes Medical Institute (HHMI)
  11. National Science Foundation [0963183]
  12. American Recovery and Reinvestment Act (ARRA)
  13. Div Of Industrial Innovation & Partnersh
  14. Directorate For Engineering [1533983] Funding Source: National Science Foundation

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To synthesize a holographic color image, one can sequentially take three holograms at different wavelengths, e.g., at red (R), green (G) and blue (B) parts of the spectrum, and digitally merge them. To speed up the imaging process by a factor of three, a Bayer color sensor-chip can also be used to demultiplex three wavelengths that simultaneously illuminate the sample and digitally retrieve individual set of holograms using the known transmission spectra of the Bayer color filters. However, because the pixels of different channels (R, G, B) on a Bayer color sensor are not at the same physical location, conventional demosaicing techniques generate color artifacts in holographic imaging using simultaneous multi-wavelength illumination. Here we demonstrate that pixel super-resolution can be merged into the color de-multiplexing process to significantly suppress the artifacts in wavelength-multiplexed holographic color imaging. This new approach, termed Demosaiced Pixel Super-Resolution (D-PSR), generates color images that are similar in performance to sequential illumination at three wavelengths, and therefore improves the speed of holographic color imaging by 3-fold. D-PSR method is broadly applicable to holographic microscopy applications, where high-resolution imaging and multi-wavelength illumination are desired.

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