Ren Jianxin, Guo Zeqian, Liu Bo, Wang Chen, Sang Bohan, Wang Kaihui, Chen Shuaidong, Mao Yaya, Ullah Rahat, Song Xiumin, Yu Yongyi, Zhao Lilong, Wu Yongfeng, Sun Tingting
Opt Express. 2024 Jun 3;32(12):21258-21268. doi: 10.1364/OE.526001.
In this paper, we propose a high-security space division multiplexing optical transmission scheme based on constellation grid selective twisting, which adopts the Rossler chaos model for encrypting PDM-16QAM signals, being applied to a multicore, few-mode multiplexing system. The bitstream of the program is passed through XOR function before performing constellation grid selective twisting and rotation of the constellation map to improve the security of the system. The proposed system is verified experimentally by using 80-wave and 4-mode multiplexing in one of the 19-core 4-mode fibers. Based on the proposed encryption method, a net transmission rate of 34.13 Tbit/s, a transmission distance of 6000 km, and a capacity distance product of 204.8 Pb/s × km is achieved under encrypted PDM-QPSK modulation. Likewise, a net transmission rate of 68.27 Tbit/s, a transmission distance of 1000 km, and a capacity distance product of 68.27 Pb/s × km is achieved based on encrypted PDM-16QAM modulation. It is experimentally verified that the sensitivity of the initial value in Rossler's chaotic model is in the range of 10∼10. Meanwhile, the proposed encryption scheme achieves a large key space of 10, which is compatible with the high-capacity distance product multicore and few-mode multiplexing system. It is a promising candidate for the next-generation highly-secured high-capacity transmission system.
在本文中,我们提出了一种基于星座网格选择性扭曲的高安全性空分复用光传输方案,该方案采用罗塞尔混沌模型对偏振复用16正交幅度调制(PDM-16QAM)信号进行加密,并应用于多芯少模复用系统。在进行星座网格选择性扭曲和星座图旋转之前,程序的比特流经过异或函数处理,以提高系统的安全性。通过在19芯4模光纤中的其中一根上使用80波和4模复用对所提出的系统进行了实验验证。基于所提出的加密方法,在加密的偏振复用四相移键控(PDM-QPSK)调制下,实现了34.13太比特每秒的净传输速率、6000千米的传输距离以及204.8皮比特每秒·千米的容量距离积。同样,基于加密的PDM-16QAM调制,实现了68.27太比特每秒的净传输速率、1000千米的传输距离以及68.27皮比特每秒·千米的容量距离积。实验验证了罗塞尔混沌模型中初始值的敏感性在10∼10范围内。同时,所提出的加密方案实现了10的大密钥空间,与高容量距离积的多芯少模复用系统兼容。它是下一代高安全性高容量传输系统的一个有前途的候选方案。