Snapshot Spectral Imaging (SSI) provides high-dimensional temporal-spatial-spectral observation to uncover intrinsic physical characteristics. However, its complex system and repetitive calibration requirements hinder edge applications. Here, we propose a compact, cost-effective, calibration-free SSI method, Aperture Diffraction Imaging Spectrometer (ADIS), which consists only of a diffractive lens with a binary mask and a Bayer-filtered sensor, requiring no additional physical footprint compared to standard RGB cameras. ADIS disperses and multiplexes wavelengths, mapping energy to distinct sensor locations, enabling full-resolution recovery from superpixel-level encodings. ADIS directly leverages theoretically computed PSFs to enable calibration-free spectral reconstruction, while tolerating lens-dependent variations across different optical configurations and bridging the gap between simulation and reality. To achieve SSI by solving a sparsely-constrained inverse problem, we introduce the Orthogonal Diffraction-Aware Unfolding Framework (ODAUF) with Voxel Shift Transformer (VST) for improved orthogonal diffraction perception. Integrating VST into ODAUF forms the efficient Orthogonal Diffraction-Aware Unfolding Voxel Shift Transformer (ODAUVST), delivering excellent recovery and reduced parameters. By elaborating on theory, systematic and comprehensive comparing, and demonstrating real SSI results, we validate the superiority of ADIS, achieving calibration-free full-resolution SSI within a commercial camera footprint.
End-to-end metalens-based snapshot spectral imaging jointly optimizes the optical encoder and computational decoder, offering a promising approach for compact and efficient hyperspectral acquisition. However, existing reconstruction methods often provide limited consistency with the known forward imaging model and insu...
Wei-Jie Chang, Zhou Wu, Sheng-Yao Xu et al.· AI Photonics Technology Symp...· 0 citations
Coherent diffractive imaging (CDI) reconstructs object complex amplitudes from diffraction patterns using iterative phase retrieval algorithms, while multi-wavelength CDI (MW-CDI) improves reconstruction robustness through wavelength diversity. However, practical MW-CDI systems remain affected by probe-object coupling,...
Zhi-Peng Li, Suhas P. Veetil, A. Sun et al.· Journal of Optics· 0 citations
Full-field Fourier-domain optical coherence tomography (FF-FD-OCT) enables rapid volumetric imaging but lacks the confocal gating inherent to point-scanning OCT. By acquiring volumes under multiple oblique illuminations, a digital confocal volume can be synthesized in post-processing, a technique originally developed w...
N. P. Klooster, S. Thakur, F. Zeisberger et al.· 0 citations
Reconstructive spectrometers (RSs) shift spectral analysis from hardware-heavy dispersion to encoding-decoding schemes. In the speckle-based RSs, spectra are encoded into disordered intensity patterns and then recovered algorithmically. However, characterizing such spectral-encoding transmission matrices (TMs) typicall...
Jun-Rui Liang, Zhong-Ming Huang, Yan-Ting Guo et al.· 0 citations
We report a compact lensless quantitative phase imaging approach in a minimal optical configuration. Unlike conventional iterative phase retrieval methods, the proposed single-frame phase retrieval using learned sensor-plane estimation (SF-PULSE) framework employs a convolutional neural network to estimate the phase at...
I. Shevkunov, M. Kandhavelu, R. Thiyagarajan et al.· Applied Physics Letters· 0 citations
Quantitative phase imaging (QPI), as a label-free microscopic imaging technique, provides quantitative optical information of cells and their subcellular structures, holding significant value in biomedical research. However, existing methods still face a notable trade-off between resolution and data efficiency. Differe...
Gui-Feng Lu, Zhuo-Shi Li, Qing-Yang Fu et al.· Global Intelligent Industry...· 0 citations
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