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Demonstration of All-Optical Divider Circuit Using SOA-MZI-Type xor Gate and Feedback Loop for Forward Error Detection

机译:演示使用SOA-MZI型异或门和反馈环路进行前向误差检测的全光分频器电路

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We investigated the feasibility of using an optical divider circuit with a semiconductor optical amplifier Mach–Zehnder interferometer (SOA-MZI)-based exclusive or (xor) gate for an all-optical forward error detection and correction scheme with a cyclic code. We employed a conventional cyclic code scheme: the same divider circuit acts as both encoder and decoder with a given generator polynomial. The divider circuit consists of cascaded xor circuits and feedback lines. Therefore, the performance of the xor circuit is one of the key factors for realizing an all-optical scheme. We numerically investigated the operation performance of the SOA-MZI-based all-optical xor gate. Dynamic operation was simulated using rate equations via the transfer matrix method. The xor function was also investigated experimentally. The eye diagram obtained from the simulation at a bit rate of 10 Gb/s showed good qualitative agreement with experimental results. Additionally, we confirmed that the optimal condition for a high quality factor (Q-factor) is obtained with equal power for each signal. Next, we demonstrated all-optical divider processing with the SOA-MZI-based xor circuit and a feedback line that forms the generator polynomial $x + 1$. The preliminary results for division operation could be verified.
机译:我们研究了将分光器电路与基于半导体光放大器Mach-Zehnder干涉仪(SOA-MZI)的异或门(或“异或”门)一起用于具有循环码的全光前向误差检测和校正方案的可行性。我们采用了常规的循环编码方案:在给定的生成多项式下,相同的除法器电路既充当编码器又充当解码器。分压器电路由级联的异或电路和反馈线组成。因此,异或电路的性能是实现全光方案的关键因素之一。我们数值研究了基于SOA-MZI的全光异或门的性能。通过传输矩阵方法,使用速率方程来模拟动态操作。还对xor功能进行了实验研究。通过仿真以10 Gb / s的比特率获得的眼图显示出与实验结果的良好定性一致性。此外,我们确认对于每个信号,以相等的功率可以获得高质量因子(Q因子)的最佳条件。接下来,我们演示了基于SOA-MZI的异或电路和形成发生器多项式$ x + 1 $的反馈线的全光除法处理。除法操作的初步结果可以得到验证。

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