High quality 3D integral compressive light field projection display

We propose a 3D Integral Compressive Light Field (ICLF) display that extends the depth of field (DoF) and suppresses shear artifacts in conventional Integral Imaging systems. Conceptually, ICLF employs a lens array to optically magnify continuous yet physically shallow light field volumes—a principle fundamentally supported by an end-to-end differentiable optimization algorithm. Specifically, we construct a depth-continuous light field volume using multiple projection planes, enabling accurate 3D reconstruction across large depth ranges. To further enhance spatial resolution, a Multi-Frame Translational Decomposition (MFTD) approach is introduced, which synthesizes denser rays through sub-pixel shifted frames. These multi-plane and multi-frame content are jointly optimized by the end-to-end differentiable bidirectional ray tracing algorithm. A prototype 3D projection display was developed based on a 2 K high-speed projector and 5-frame MFTD. The proposed system enables high-quality 3D visualization over a DoF range of 50–500 mm, achieving an average PSNR of more than 30 dB within an approximately 20 ∘ viewing angle. The experimental results confirm that the proposed method effectively improves both display resolution and visual fidelity, indicating its promising potential for future 3D light field display applications.

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Publication Details

Journal
Optics & Laser Technology
Published
2026-09-14
DOI
https://doi.org/10.1016/j.optlastec.2026.116356
Primary Topic
Advanced Optical Imaging Technologies
Type
article
Field-Weighted Citation Impact
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article

High quality 3D integral compressive light field projection display

Yuwang Wang, Hui Li, Junyu Wang, Duo Chen et al.
Optics & Laser Technology
Advanced Optical Imaging Technologies
article

High quality 3D integral compressive light field projection display

Yuwang Wang, Hui Li, Junyu Wang, Duo Chen, Jianhua Tao
article en

Abstract

We propose a 3D Integral Compressive Light Field (ICLF) display that extends the depth of field (DoF) and suppresses shear artifacts in conventional Integral Imaging systems. Conceptually, ICLF employs a lens array to optically magnify continuous yet physically shallow light field volumes—a principle fundamentally supported by an end-to-end differentiable optimization algorithm. Specifically, we construct a depth-continuous light field volume using multiple projection planes, enabling accurate 3D reconstruction across large depth ranges. To further enhance spatial resolution, a Multi-Frame Translational Decomposition (MFTD) approach is introduced, which synthesizes denser rays through sub-pixel shifted frames. These multi-plane and multi-frame content are jointly optimized by the end-to-end differentiable bidirectional ray tracing algorithm. A prototype 3D projection display was developed based on a 2 K high-speed projector and 5-frame MFTD. The proposed system enables high-quality 3D visualization over a DoF range of 50–500 mm, achieving an average PSNR of more than 30 dB within an approximately 20 ∘ viewing angle. The experimental results confirm that the proposed method effectively improves both display resolution and visual fidelity, indicating its promising potential for future 3D light field display applications.

Optics & Laser TechnologyVol. 203
Tsinghua University (CN)
Openalex Percentile: Top 13%
Advanced Optical Imaging Technologies
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High quality 3D integral compressive light field projection display — Yuwang Wang, Hui Li, et al. · Optics & Laser Technology (2026) | TGRS Research Map | TGRS