Snapshot 3D image projection using a diffractive decoder

Fuente: arXiv
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Main Authors: Isil, Cagatay, Chen, Alexander, Li, Yuhang, Ardic, F. Onuralp, Chen, Shiqi, Shen, Che-Yung, Ozcan, Aydogan
Format: Preprint
Published: 2025
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author Isil, Cagatay
Chen, Alexander
Li, Yuhang
Ardic, F. Onuralp
Chen, Shiqi
Shen, Che-Yung
Ozcan, Aydogan
author_facet Isil, Cagatay
Chen, Alexander
Li, Yuhang
Ardic, F. Onuralp
Chen, Shiqi
Shen, Che-Yung
Ozcan, Aydogan
contents 3D image display is essential for next-generation volumetric imaging; however, dense depth multiplexing for 3D image projection remains challenging because diffraction-induced cross-talk rapidly increases as the axial image planes get closer. Here, we introduce a 3D display system comprising a digital encoder and a diffractive optical decoder, which simultaneously projects different images onto multiple target axial planes with high axial resolution. By leveraging multi-layer diffractive wavefront decoding and deep learning-based end-to-end optimization, the system achieves high-fidelity depth-resolved 3D image projection in a snapshot, enabling axial plane separations on the order of a wavelength. The digital encoder leverages a Fourier encoder network to capture multi-scale spatial and frequency-domain features from input images, integrates axial position encoding, and generates a unified phase representation that simultaneously encodes all images to be axially projected in a single snapshot through a jointly-optimized diffractive decoder. We characterized the impact of diffractive decoder depth, output diffraction efficiency, spatial light modulator resolution, and axial encoding density, revealing trade-offs that govern axial separation and 3D image projection quality. We further demonstrated the capability to display volumetric images containing 28 axial slices, as well as the ability to dynamically reconfigure the axial locations of the image planes, performed on demand. Finally, we experimentally validated the presented approach, demonstrating close agreement between the measured results and the target images. These results establish the diffractive 3D display system as a compact and scalable framework for depth-resolved snapshot 3D image projection, with potential applications in holographic displays, AR/VR interfaces, and volumetric optical computing.
format Preprint
id arxiv_https___arxiv_org_abs_2512_20464
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Snapshot 3D image projection using a diffractive decoder
Isil, Cagatay
Chen, Alexander
Li, Yuhang
Ardic, F. Onuralp
Chen, Shiqi
Shen, Che-Yung
Ozcan, Aydogan
Optics
Computer Vision and Pattern Recognition
Neural and Evolutionary Computing
Applied Physics
3D image display is essential for next-generation volumetric imaging; however, dense depth multiplexing for 3D image projection remains challenging because diffraction-induced cross-talk rapidly increases as the axial image planes get closer. Here, we introduce a 3D display system comprising a digital encoder and a diffractive optical decoder, which simultaneously projects different images onto multiple target axial planes with high axial resolution. By leveraging multi-layer diffractive wavefront decoding and deep learning-based end-to-end optimization, the system achieves high-fidelity depth-resolved 3D image projection in a snapshot, enabling axial plane separations on the order of a wavelength. The digital encoder leverages a Fourier encoder network to capture multi-scale spatial and frequency-domain features from input images, integrates axial position encoding, and generates a unified phase representation that simultaneously encodes all images to be axially projected in a single snapshot through a jointly-optimized diffractive decoder. We characterized the impact of diffractive decoder depth, output diffraction efficiency, spatial light modulator resolution, and axial encoding density, revealing trade-offs that govern axial separation and 3D image projection quality. We further demonstrated the capability to display volumetric images containing 28 axial slices, as well as the ability to dynamically reconfigure the axial locations of the image planes, performed on demand. Finally, we experimentally validated the presented approach, demonstrating close agreement between the measured results and the target images. These results establish the diffractive 3D display system as a compact and scalable framework for depth-resolved snapshot 3D image projection, with potential applications in holographic displays, AR/VR interfaces, and volumetric optical computing.
title Snapshot 3D image projection using a diffractive decoder
topic Optics
Computer Vision and Pattern Recognition
Neural and Evolutionary Computing
Applied Physics
url https://arxiv.org/abs/2512.20464