论文标题
WDM光学通信系统中的内部和通道间失真补偿的多波长光子神经形态计算
Multi-Wavelength Photonic Neuromorphic Computing for Intra and Inter-Channel Distortion Compensations in WDM Optical Communication Systems
论文作者
论文摘要
DSP(数字信号处理)已被广泛应用于光学通信系统以减轻信号扭曲,并已成为过去十年来持续数据流量增长的关键技术之一。但是,基于应用的集成电路DSP芯片的严格能源预算阻止了某些功能强大但计算上昂贵的DSP算法的部署。结果,纤维非线性诱导的信号失真阻碍了光纤通信系统,尤其是在波长划分多路复用(WDM)传输系统中。为了解决这些挑战,Photonics硬件(即光子神经网络)有望打破电子产品的性能限制,并在解决传统数字电子平台无法实现的智力任务方面的带宽,延迟和功耗方面获得优势。这项工作提出了一个能够同时解决分散体的光子复发性神经网络(RNN),以及在光子域中多个WDM通道中的内部和通道间纤维非线性,这是我们的最佳知识。此外,我们的光子RNN可以直接处理光子结构域中的光学WDM信号,从而避免了模拟转换器(ADC)中的过度耗能和速度开销。我们在模拟中证明了我们的光子RNN可以同时处理多个WDM通道,并与脉冲振幅调制4级传输系统中所有WDM通道的典型DSP算法相比,获得了降低的位错误率,这要归功于其独特的能力,可以解决频道间非线网络非线性非线性非线性。根据我们的功率和延迟分析,除了信号质量性能外,与最先进的DSP芯片相比,该系统还有望显着降低功耗和潜伏期。
DSP (digital signal processing) has been widely applied in optical communication systems to mitigate signal distortions and has become one of the key technologies that have sustained data traffic growth over the past decade. However, the strict energy budget of application-specific integrated circuit-based DSP chips has prevented the deployment of some powerful but computationally costly DSP algorithms. As a result, fiber nonlinearity-induced signal distortions impede fiber communications systems, especially in wavelength-division multiplexed (WDM) transmission systems. To solve these challenges, photonics hardware (i.e., photonic neural networks) promises to break performance limitations in electronics and gain advantages in bandwidth, latency, and power consumption in solving intellectual tasks that are unreachable by conventional digital electronic platforms. This work proposes a photonic recurrent neural network (RNN) capable of simultaneously resolving dispersion and both intra and inter-channel fiber nonlinearities in multiple WDM channels in the photonic domain, for the first time to our best knowledge. Furthermore, our photonic RNN can directly process optical WDM signals in the photonic domain, avoiding prohibitive energy consumption and speed overhead in analog to digital converters (ADC). We demonstrate in simulation that our photonic RNN can process multiple WDM channels simultaneously and achieve a reduced bit error rate compared to typical DSP algorithms for all WDM channels in a pulse-amplitude modulation 4-level (PAM4) transmission system, thanks to its unique capability to address inter-channel fiber nonlinearities. In addition to signal quality performance, the proposed system also promises to significantly reduce the power consumption and the latency compared to the state-of-the-art DSP chips, according to our power and latency analysis.