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Robust 3D Reconstruction in Turbid Water at Low Sampling Rates via Dual-DMD Single-Pixel System

Wei Feng, Bincheng Wang, Xiaoyuan Pan, Zhenmin Zhu, Shan Lou, Dawei Tang, Feng Gao, Fumin Zhang

Research output: Contribution to journalArticlepeer-review

Abstract

Conventional optical imaging struggles to acquire clear images of underwater scenes in turbid water. In this paper, a new dual-DMD single-pixel 3D imaging (DSP3DI) system is designed and constructed to realize the 3D shape reconstruction in highly turbid water conditions. Leveraging the spectral dependence of the scattering coefficient of water on wavelength, the designed system uses a 532 nm laser as the illumination source to minimize scattering and absorption losses during light propagation, and two digital micromirror devices (DMDs) are used to generate phase-shifting fringe patterns and sampling patterns, respectively, and then uses a single-pixel detector to sequentially collect the spatial light field reflected from the surface of the object. A single-pixel imaging (SPI) method based on a cake-cutting strategy for Hadamard encoding reconstructs the deformed fringe images, from which phase information is recovered to calculate the 3D shape of objects. The experimental results show that the system not only achieves millimeter-level measurement accuracy but also successfully reconstructs the 3D shape of complex objects at a sampling rate of 10% and in turbidities as high as 40 NTU. The proposed system, characterized by its compact structure, high measurement accuracy, and strong scattering resistance, offers a novel solution for high-precision 3D imaging in highly turbid water.

Original languageEnglish
Article number446
Number of pages22
JournalPhotonics
Volume13
Issue number5
Early online date1 May 2026
DOIs
Publication statusPublished - 1 May 2026

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