Tseng Chin-Hao, Funabashi Ryo, Kanno Kazutaka, Uchida Atsushi, Wei Chia-Chien, Hwang Sheng-Kwang
Opt Lett. 2021 Jul 15;46(14):3384-3387. doi: 10.1364/OL.431054.
This study investigates high-entropy chaos generation using a semiconductor laser subject to intensity-modulated optical injection for certified physical random number generation. Chaos with a continuous spectral profile that is not only widely distributed but also broadly flattened over a bandwidth of 33 GHz is generated. The former suggests that the chaos can be sampled at a high rate while keeping sufficient un-correlation between data samples, and the latter indicates that the chaos possesses high entropy, both of which enhance the generation rate of physical random numbers with guaranteed unpredictability. A minimum entropy value of 2.19 bits/sample is obtained without any post-processing and by excluding the contribution from measurement noise, suggesting that, to the least extent, the chaotic source can be used as a 2-bit physical random number generator at a rate of 160 Gbits/s.
本研究利用受强度调制光注入的半导体激光器研究高熵混沌生成,用于认证的物理随机数生成。生成了具有连续光谱分布的混沌,该混沌不仅分布广泛,而且在33 GHz带宽上广泛平坦。前者表明混沌可以以高速率采样,同时保持数据样本之间足够的不相关性,后者表明混沌具有高熵,这两者都提高了具有保证不可预测性的物理随机数的生成率。在没有任何后处理且排除测量噪声贡献的情况下,获得了最低熵值2.19比特/样本,这表明,至少在一定程度上,混沌源可以用作速率为160 Gbit/s的2比特物理随机数发生器。