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Parallelized computational 3D video microscopy of freely moving organisms at multiple gigapixels per second.

Publication ,  Journal Article
Zhou, KC; Harfouche, M; Cooke, CL; Park, J; Konda, PC; Kreiss, L; Kim, K; Jönsson, J; Doman, T; Reamey, P; Saliu, V; Cook, CB; Zheng, M ...
Published in: Nat Photonics
May 2023

Wide field of view microscopy that can resolve 3D information at high speed and spatial resolution is highly desirable for studying the behaviour of freely moving model organisms. However, it is challenging to design an optical instrument that optimises all these properties simultaneously. Existing techniques typically require the acquisition of sequential image snapshots to observe large areas or measure 3D information, thus compromising on speed and throughput. Here, we present 3D-RAPID, a computational microscope based on a synchronized array of 54 cameras that can capture high-speed 3D topographic videos over an area of 135 cm2, achieving up to 230 frames per second at spatiotemporal throughputs exceeding 5 gigapixels per second. 3D-RAPID employs a 3D reconstruction algorithm that, for each synchronized snapshot, fuses all 54 images into a composite that includes a co-registered 3D height map. The self-supervised 3D reconstruction algorithm trains a neural network to map raw photometric images to 3D topography using stereo overlap redundancy and ray-propagation physics as the only supervision mechanism. The resulting reconstruction process is thus robust to generalization errors and scales to arbitrarily long videos from arbitrarily sized camera arrays. We demonstrate the broad applicability of 3D-RAPID with collections of several freely behaving organisms, including ants, fruit flies, and zebrafish larvae.

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Published In

Nat Photonics

DOI

ISSN

1749-4885

Publication Date

May 2023

Volume

17

Issue

5

Start / End Page

442 / 450

Location

England

Related Subject Headings

  • Optoelectronics & Photonics
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 02 Physical Sciences
  • 01 Mathematical Sciences
 

Citation

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Zhou, K. C., Harfouche, M., Cooke, C. L., Park, J., Konda, P. C., Kreiss, L., … Horstmeyer, R. (2023). Parallelized computational 3D video microscopy of freely moving organisms at multiple gigapixels per second. Nat Photonics, 17(5), 442–450. https://doi.org/10.1038/s41566-023-01171-7
Zhou, Kevin C., Mark Harfouche, Colin L. Cooke, Jaehee Park, Pavan C. Konda, Lucas Kreiss, Kanghyun Kim, et al. “Parallelized computational 3D video microscopy of freely moving organisms at multiple gigapixels per second.Nat Photonics 17, no. 5 (May 2023): 442–50. https://doi.org/10.1038/s41566-023-01171-7.
Zhou KC, Harfouche M, Cooke CL, Park J, Konda PC, Kreiss L, et al. Parallelized computational 3D video microscopy of freely moving organisms at multiple gigapixels per second. Nat Photonics. 2023 May;17(5):442–50.
Zhou, Kevin C., et al. “Parallelized computational 3D video microscopy of freely moving organisms at multiple gigapixels per second.Nat Photonics, vol. 17, no. 5, May 2023, pp. 442–50. Pubmed, doi:10.1038/s41566-023-01171-7.
Zhou KC, Harfouche M, Cooke CL, Park J, Konda PC, Kreiss L, Kim K, Jönsson J, Doman T, Reamey P, Saliu V, Cook CB, Zheng M, Bechtel JP, Bègue A, McCarroll M, Bagwell J, Horstmeyer G, Bagnat M, Horstmeyer R. Parallelized computational 3D video microscopy of freely moving organisms at multiple gigapixels per second. Nat Photonics. 2023 May;17(5):442–450.

Published In

Nat Photonics

DOI

ISSN

1749-4885

Publication Date

May 2023

Volume

17

Issue

5

Start / End Page

442 / 450

Location

England

Related Subject Headings

  • Optoelectronics & Photonics
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 02 Physical Sciences
  • 01 Mathematical Sciences