Bian Liheng, Chang Xuyang, Jiang Shaowei, Yang Liming, Zhan Xinrui, Liu Shicong, Li Daoyu, Yan Rong, Gao Zhen, Zhang Jun
State Key Laboratory of CNS/ATM & MIIT Key Laboratory of Complex-field Intelligent Sensing, Beijing Institute of Technology, Beijing, China.
Guangdong Province Key Laboratory of Intelligent Detection in Complex Environment of Aerospace, Land and Sea, Beijing Institute of Technology, Zhuhai, China.
Nat Commun. 2024 Nov 12;15(1):9807. doi: 10.1038/s41467-024-54168-3.
Data proliferation in the digital age necessitates robust encryption techniques to protect information privacy. Optical encryption leverages the multiple degrees of freedom inherent in light waves to encode information with parallel processing and enhanced security features. However, implementations of large-scale, high-security optical encryption have largely remained theoretical or limited to digital simulations due to hardware constraints, signal-to-noise ratio challenges, and precision fabrication of encoding elements. Here, we present an optical encryption platform utilizing scattering multiplexing ptychography, simultaneously enhancing security and throughput. Unlike optical encoders which rely on computer-generated randomness, our approach leverages the inherent complexity of light scattering as a natural unclonable function. This enables multi-dimensional encoding with superior randomness. Furthermore, the ptychographic configuration expands encryption throughput beyond hardware limitations through spatial multiplexing of different scatterer regions. We propose a hybrid decryption algorithm integrating model- and data-driven strategies, ensuring robust decryption against various sources of measurement noise and communication interference. We achieved optical encryption at a scale of ten-megapixel pixels with 1.23 µm resolution. Communication experiments validate the resilience of our decryption algorithm, yielding high-fidelity results even under extreme transmission conditions characterized by a 20% bit error rate. Our encryption platform offers a holistic solution for large-scale, high-security, and cost-effective cryptography.
数字时代的数据激增需要强大的加密技术来保护信息隐私。光学加密利用光波固有的多个自由度,通过并行处理和增强的安全特性对信息进行编码。然而,由于硬件限制、信噪比挑战以及编码元件的精确制造,大规模、高安全性光学加密的实现很大程度上仍停留在理论层面或仅限于数字模拟。在此,我们展示了一个利用散射复用叠层成像技术的光学加密平台,同时提高了安全性和吞吐量。与依赖计算机生成随机性的光学编码器不同,我们的方法利用光散射的固有复杂性作为一种天然不可克隆的函数。这实现了具有卓越随机性的多维编码。此外,叠层成像配置通过对不同散射体区域进行空间复用,将加密吞吐量扩展到超出硬件限制。我们提出了一种集成模型驱动和数据驱动策略的混合解密算法,确保针对各种测量噪声和通信干扰源进行稳健解密。我们实现了分辨率为1.23 µm的1000万像素规模的光学加密。通信实验验证了我们解密算法的弹性,即使在以20%误码率为特征的极端传输条件下也能产生高保真结果。我们的加密平台为大规模、高安全性和经济高效的密码学提供了一个整体解决方案。