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采用可编程菲涅耳区孔径的无透镜成像。

Lensless imaging with a programmable Fresnel zone aperture.

作者信息

Zhang Xu, Wang Bowen, Li Sheng, Liang Kunyao, Guan Haitao, Chen Qian, Zuo Chao

机构信息

School of Electronic and Optical Engineering, Nanjing University of Science and Technology, No. 200 Xiaolingwei Street, Nanjing, Jiangsu Province 210094, China.

Jiangsu Key Laboratory of Spectral Imaging & Intelligent Sense, Nanjing, Jiangsu Province 210094, China.

出版信息

Sci Adv. 2025 Mar 21;11(12):eadt3909. doi: 10.1126/sciadv.adt3909.

Abstract

Optical imaging has long been dominated by traditional lens-based systems that, despite their success, are inherently limited by size, weight, and cost. Lensless imaging seeks to overcome these limitations by replacing lenses with thinner, lighter, and cheaper optical modulators and reconstructing images computationally, while facing trade-offs in image quality, artifacts, and flexibility inherent in traditional static modulation. Here, we propose a lensless imaging method with programmable Fresnel zone aperture (FZA), termed LIP. With a commercial liquid crystal display, we designed an integrated LIP module and demonstrated its capability of high-quality artifact-free reconstruction through dynamic modulation and offset-FZA parallel merging. Compared to static-modulation approaches, LIP achieves a 2.5× resolution enhancement and a 3 decibels improvement in signal-to-noise ratio in "static mode" while maintaining an interaction frame rate of 15 frames per second in "dynamic mode." Experimental results demonstrate LIP's potential as a miniaturized platform for versatile advanced imaging tasks like virtual reality and human-computer interaction.

摘要

长期以来,光学成像一直由传统的基于透镜的系统主导,尽管这些系统取得了成功,但它们在尺寸、重量和成本方面存在固有的局限性。无透镜成像试图通过用更薄、更轻、更便宜的光学调制器取代透镜,并通过计算重建图像来克服这些局限性,同时面临传统静态调制中固有的图像质量、伪像和灵活性方面的权衡。在此,我们提出一种具有可编程菲涅耳区孔径(FZA)的无透镜成像方法,称为LIP。利用商用液晶显示器,我们设计了一个集成的LIP模块,并通过动态调制和偏移FZA并行合并展示了其高质量无伪像重建的能力。与静态调制方法相比,LIP在“静态模式”下实现了2.5倍的分辨率增强和3分贝的信噪比提升,同时在“动态模式”下保持15帧每秒的交互帧率。实验结果证明了LIP作为虚拟现实和人机交互等通用高级成像任务的小型化平台的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa3c/11927639/61d1253accbd/sciadv.adt3909-f1.jpg

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