Opt Express. 2023 Jun 19;31(13):21367-21388. doi: 10.1364/OE.491910.
In this work, we propose a chaotic secure communication system with optical time division multiplexing (OTDM), using two cascaded reservoir computing systems based on multi beams of chaotic polarization components emitted by four optically pumped VCSELs. Here, each level of reservoir layer includes four parallel reservoirs, and each parallel reservoir contains two sub-reservoirs. When the reservoirs in the first-level reservoir layer are well trained and the training errors are far less than 0.1, each group of chaotic masking signals can be effectively separated. When the reservoirs in the second reservoir layer are effectively trained and the training errors are far less than 0.1, the output for each reservoir can be well synchronized with the corresponding original delay chaotic carrier-wave. Here, the synchronization quality between them can be characterized by the correlation coefficients of more than 0.97 in different parameter spaces of the system. Under these high-quality synchronization conditions, we further discuss the performances of dual-channel OTDM with a rate of 4×60 Gb/s. By observing the eye diagram, bit error rate and time-waveform of each decoded message in detail, we find that there is a large eye-openings in the eye diagrams, low bit error rate and higher quality time-waveform for each decoded message. Except that the bit error rate of one decoded message is lower than 7 × 10 in different parameter spaces, and those of the other decoded messages are close to 0, indicating that high-quality data transmissions are expected to be realized in the system. The research results show that the multi-cascaded reservoir computing systems based on multiple optically pumped VCSELs provide an effective method for the realization of multi-channel OTDM chaotic secure communications with high-speed.
在这项工作中,我们提出了一种使用光学时分复用(OTDM)的混沌保密通信系统,该系统使用两个级联的基于多束混沌偏振分量的储层计算系统,这些偏振分量由四个光泵浦 VCSEL 发射。在这里,每个储层层的每一级都包括四个并行储层,每个并行储层包含两个子储层。当第一层储层中的储层得到很好的训练,且训练误差远小于 0.1 时,每组混沌掩蔽信号可以被有效地分离。当第二层储层中的储层得到有效训练,且训练误差远小于 0.1 时,每个储层的输出可以与相应的原始延迟混沌载波很好地同步。在这里,它们之间的同步质量可以用系统不同参数空间中的相关系数大于 0.97 来表示。在这些高质量的同步条件下,我们进一步讨论了速率为 4×60 Gb/s 的双通道 OTDM 的性能。通过详细观察每个解码消息的眼图、误码率和时间波形,我们发现眼图中有很大的眼开度,每个解码消息的误码率较低,时间波形质量较高。除了一个解码消息的误码率在不同参数空间中低于 7×10,其他解码消息的误码率接近 0 外,这表明该系统有望实现高质量的数据传输。研究结果表明,基于多光泵浦 VCSEL 的多级储层计算系统为实现高速多通道 OTDM 混沌保密通信提供了一种有效的方法。