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Dual-beam differential optical imaging for atmospheric turbulence mitigation in free-space propagation

  • Tanzeel Ur Rahman
  • , Guijun Li
  • , Adnan Daud Khan
  • , Farman Ali
  • , Saeed Iqbal
  • , Ahmed Al Nuaim
  • , Zhengbiao Ouyang
  • , Omar Alruwaili
  • , Shahid Kamal

Research output: Contribution to journalArticlepeer-review

Abstract

Atmospheric turbulence imposes a fundamental barrier to reliable object detection in consumer-grade free-space optical (FSO) systems, degrading performance in applications such as drone navigation, smart surveillance, and portable satellite terminals. Current approaches, exemplified by the hybrid adversarial contrastive framework (HACF), operate in the post-acquisition domain, treating turbulence as irrecoverable stochastic noise and relying on statistical pseudo-label refinement to mitigate its effects. We introduce differential beam imaging (DBI), a physics-driven, acquisition-layer paradigm that transcends this limitation by physically isolating object reflectance at the moment of signal capture. DBI exploits the spatial correlation of atmospheric turbulence through simultaneous dual-beam probing; one beam illuminates the object, while an adjacent reference beam captures only the turbulence field. By differencing these measurements, DBI cancels turbulence at its source, preserving the object’s structural integrity before any information loss occurs. We formalize and solve four non-incremental scientific problems: (P1) establishing the wave-optics-based spatial correlation regime for valid cancellation, (P2) optimizing beam separation under turbulence crosstalk trade-offs, (P3) designing a Siamese-cross attention network (SCAN) that learns turbulence-invariant features from differential image pairs, and (P4) co-designing a real-time, low-power (<1 W, <100 cm3) hardware-software stack for consumer deployment. Simulation-based validation demonstrates that DBI achieves a Turbulence Cancellation Efficiency (TCE) exceeding 2.3 and maintains a mean average precision (mAP) of 64.1 under moderate turbulence (Cn2 = 10−14 m−2/3), outperforming HACF by 35% in detection accuracy while operating at 30 FPS. This work establishes a new class of differential optical systems, shifting the paradigm from algorithmic robustness to physical-layer intelligence for robust perception in dynamic optical environments.

Original languageEnglish
Pages (from-to)17770-17793
Number of pages24
JournalOptics Express
Volume34
Issue number10
DOIs
StatePublished - 18 May 2026
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2026 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.

ASJC Scopus subject areas

  • Atomic and Molecular Physics, and Optics

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