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Physical sampling for computational photography.

Journal articles  - Review, Journal Article
Chen, N; Brady, DJ
Published in: Reports on progress in physics. Physical Society (Great Britain)
July 2026

The standard model of photography is that lenses form images and focal planes capture those images. Over the past two decades, however, cameras have been transformed from devices that record focal images into analog-to-digital converters that transform massively parallel optical signals into serial electronic data. Under this new model, one may choose to maximize the quality and quantity of captured information, rather than focal image quality. Here we review the nature of the optical data stream and consider lens and focal plane designs that improve information capture capacity. After maximizing information capacity, the challenge of converting this information to digital data requires novel read-out and compression. We review strategies for approaching physical information limits under realistic size, power, and bandwidth constraints. Multiscale monocentric (spherical primary optics combined with arrays of secondary micro-cameras, each imaging a narrow subfield) and array lens architectures relax unfavorable geometric scaling by trading monolithic optics for co-designed system-level integration (jointly optimized optics, focal-plane, and readout subsystems). Metaoptic and mode-sorting focal plane filters implement richer projection operators that sample spectral, polarimetric, and coherence features without requiring exhaustive scanning. Finally, because readout and computation dominate energy at high throughput, we highlight architectures that perform dimensionality reduction before (or during) digitization, including integrated photonic encoders and multilayer optical projections coupled to detection and learned decoding. Together, these developments motivate a shift from cameras optimized to produce 2D images toward cameras engineered as end-to-end information channels, co-designing optics, focal-plane, and readout to deliver more task-relevant measurements per photon and per joule.

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Published In

Reports on progress in physics. Physical Society (Great Britain)

DOI

EISSN

1361-6633

ISSN

0034-4885

Publication Date

July 2026

Volume

89

Issue

7

Related Subject Headings

  • General Physics
  • 51 Physical sciences
  • 49 Mathematical sciences
 

Citation

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Chen, N., & Brady, D. J. (2026). Physical sampling for computational photography. Reports on Progress in Physics. Physical Society (Great Britain), 89(7). https://doi.org/10.1088/1361-6633/ae855b
Chen, Ni, and David J. Brady. “Physical sampling for computational photography.Reports on Progress in Physics. Physical Society (Great Britain) 89, no. 7 (July 2026). https://doi.org/10.1088/1361-6633/ae855b.
Chen N, Brady DJ. Physical sampling for computational photography. Reports on progress in physics Physical Society (Great Britain). 2026 Jul;89(7).
Chen, Ni, and David J. Brady. “Physical sampling for computational photography.Reports on Progress in Physics. Physical Society (Great Britain), vol. 89, no. 7, July 2026. Epmc, doi:10.1088/1361-6633/ae855b.
Chen N, Brady DJ. Physical sampling for computational photography. Reports on progress in physics Physical Society (Great Britain). 2026 Jul;89(7).
Journal cover image

Published In

Reports on progress in physics. Physical Society (Great Britain)

DOI

EISSN

1361-6633

ISSN

0034-4885

Publication Date

July 2026

Volume

89

Issue

7

Related Subject Headings

  • General Physics
  • 51 Physical sciences
  • 49 Mathematical sciences