论文标题
带有集成光子处理器的宽带物理层认知无线电用于盲源分离
Broadband physical layer cognitive radio with an integrated photonic processor for blind source separation
论文作者
论文摘要
电信的扩展会导致越来越严重的串扰和干扰,以及一种称为盲源分离(BSS)的物理层认知方法可以有效地解决这些问题。 BSS需要最少的先验知识才能从其混合物,不可知论到载体频率,信号格式和通道条件中恢复信号。但是,由于固有的播放频率(RF)组件,高能量消耗数字信号处理器(DSP)及其共同的可扩展性弱点,因此BSS的先前电子实施无法满足这种多功能性要求。在这里,我们报告了一种光子BSS方法,该方法继承了光学设备的优势,并可以完全实现其“失明”方面。使用集成在光子芯片上的微型重量库,我们在19.2 GHz的带宽上展示了能节能的WDM量表,涵盖了许多标准频带。由于最近开发的抖动控制方法,我们的系统还具有高(9位)的分辨率,用于解散,即使对于条件不足的混合物,也会产生较高的信噪比(SIR)。
The expansion of telecommunications incurs increasingly severe crosstalk and interference, and a physical layer cognitive method, called blind source separation (BSS), can effectively address these issues. BSS requires minimal prior knowledge to recover signals from their mixtures, agnostic to carrier frequency, signal format, and channel conditions. However, previous electronic implementations of BSS did not fulfill this versatility requirement due to the inherently narrow bandwidth of radio-frequency (RF) components, the high energy consumption of digital signal processors (DSP), and their shared weaknesses of low scalability. Here, we report a photonic BSS approach that inherits the advantages of optical devices and can fully fulfill its "blindness" aspect. Using a microring weight bank integrated on a photonic chip, we demonstrate energy-efficient, WDM-scalable BSS across 19.2 GHz of bandwidth, covering many standard frequency bands. Our system also has a high (9-bit) resolution for signal demixing thanks to a recently developed dithering control method, resulting in higher signal-to-interference ratios (SIR) even for ill-conditioned mixtures.