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February 2, 20260 citationsOpen Access

Phase Retrieval via Gain-Based Photonic XY-Hamiltonian Optimization

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NBNatalia BerloffRWRichard Zhipeng WangGLGuangyao Li

Key Points

  • This research aims to improve phase retrieval from coded diffraction patterns using gain-based photonic optimization.
  • Reformulated phase retrieval as minimization of continuous-variable XY Hamiltonian
  • Utilized coupled-mode equations of exciton-polariton condensates and coupled-laser arrays
  • Implemented high-speed digital feedback in spatial photonic Ising machines
  • Conducted numerical experiments on images and complex data
  • Gain-based solver outperformed Relaxed-Reflect-Reflect (RRR) algorithm in medium-noise conditions
  • Advantages retained as problem size increased
  • Promised fast and energy-efficient phase retrieval on photonic hardware

Abstract

Phase-retrieval from coded diffraction patterns (CDP) is important to X-ray crystallography, diffraction tomography and astronomical imaging, yet remains a hard, non-convex inverse problem. We show that CDP recovery can be reformulated exactly as the minimisation of a continuous-variable XY Hamiltonian and solved by gain-based photonic networks. The coupled-mode equations we exploit are the natural mean-field dynamics of exciton-polariton condensate lattices, coupled-laser arrays and driven photon Bose–Einstein condensates, while other hardware such as the spatial photonic Ising machine can implement the same update rule through high-speed digital feedback, preserving full optical parallelism. Numerical experiments on images, two- and three-dimensional vortices and unstructured complex data demonstrate that the gain-based solver consistently outperforms the state-of-the-art Relaxed-Reflect-Reflect (RRR) algorithm in the medium-noise regime (signal-to-noise ratios 10–40 dB) and retains this advantage as problem size scales. Because the physical platform performs the continuous optimisation, our approach promises fast, energy-efficient phase retrieval on readily available photonic hardware.

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Cite This Study

Berloff et al. (2026) studied this question.

synapsesocial.com/papers/6980feeac1c9540dea8117a3https://doi.org/10.17863/cam.126225
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