Yu Zhipeng, Li Huanhao, Zhao Wannian, Huang Po-Sheng, Lin Yu-Tsung, Yao Jing, Li Wenzhao, Zhao Qi, Wu Pin Chieh, Li Bo, Genevet Patrice, Song Qinghua, Lai Puxiang
Department of Biomedical Engineering, Hong Kong Polytechnic University, Hong Kong SAR, China.
Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, China.
Nat Commun. 2024 Mar 23;15(1):2607. doi: 10.1038/s41467-024-46946-w.
Artificial intelligence has gained significant attention for exploiting optical scattering for optical encryption. Conventional scattering media are inevitably influenced by instability or perturbations, and hence unsuitable for long-term scenarios. Additionally, the plaintext can be easily compromised due to the single channel within the medium and one-to-one mapping between input and output. To mitigate these issues, a stable spin-multiplexing disordered metasurface (DM) with numerous polarized transmission channels serves as the scattering medium, and a double-secure procedure with superposition of plaintext and security key achieves two-to-one mapping between input and output. In attack analysis, when the ciphertext, security key, and incident polarization are all correct, the plaintext can be decrypted. This system demonstrates excellent decryption efficiency over extended periods in noisy environments. The DM, functioning as an ultra-stable and active speckle generator, coupled with the double-secure approach, creates a highly secure speckle-based cryptosystem with immense potentials for practical applications.
人工智能因利用光散射进行光学加密而备受关注。传统散射介质不可避免地受到不稳定性或扰动的影响,因此不适用于长期场景。此外,由于介质内的单通道以及输入与输出之间的一对一映射,明文很容易被破解。为缓解这些问题,具有众多偏振传输通道的稳定自旋复用无序超表面(DM)用作散射介质,明文与安全密钥叠加的双重安全程序实现了输入与输出之间的二对一映射。在攻击分析中,当密文、安全密钥和入射偏振均正确时,明文即可解密。该系统在嘈杂环境中长时间展示出优异的解密效率。DM作为超稳定且有源的散斑发生器,与双重安全方法相结合,创建了一个具有巨大实际应用潜力的高度安全的基于散斑的密码系统。