论文标题
通过非线性光学频率扫描和刺激Brillouin散射的频率到时映射
Photonics-enabled wavelet-like transform via nonlinear optical frequency sweeping and stimulated Brillouin scattering-based frequency-to-time mapping
论文作者
论文摘要
具有多分辨率时频分析为特征的类似光子的小波状转换系统是基于典型的刺激的布里鲁因散射(SBS)泵送 - 螺旋螺旋桨设置,并使用光学非线性频率扫描信号进行了。在泵路径中,将连续的波光信号注入SBS介质中以产生SBS增益。在探针路径中,产生了带有时间变化的CHIRP速率的周期性非线性频率扫描信号,然后通过测试的电信信号(SUT)在Mach-Zehnder调制器(MZM)下调制该信号。来自MZM的光学信号通过SBS增益有选择地扩增,并使用低速光电探测器转换回电域,从而实现了定期基于SBS的频率与时间映射(FTTM)。对应于不同周期的频域信息通过低速电脉冲的形式映射到时域,然后将其剪接以分析SUT实时的时频关系。在每个扫描周期中,随时间变化的CHIRP速率使具有不同频率的信号在FTTM过程中具有不同的频率分辨率,这与小波转换的特性非常相似,因此我们称其为小波样变换。进行实验。多种RF信号的多分辨率时频分析仅在设备限制的4 GHz带宽中进行。
A photonics-enabled wavelet-like transform system, characterized by multi-resolution time-frequency analysis, is proposed based on a typical stimulated Brillouin scattering (SBS) pump-probe setup using an optical nonlinear frequency-sweep signal. In the pump path, a continuous-wave optical signal is injected into an SBS medium to generate an SBS gain. In the probe path, a periodic nonlinear frequency-sweep optical signal with a time-varying chirp rate is generated, which is then modulated at a Mach-Zehnder modulator (MZM) by the electrical signal under test (SUT). The optical signal from the MZM is selectively amplified by the SBS gain and converted back to the electrical domain using a low-speed photodetector, implementing the periodic SBS-based frequency-to-time mapping (FTTM). The frequency-domain information corresponding to different periods is mapped to the time domain via the FTTM in the form of low-speed electrical pulses, which is then spliced to analyze the time-frequency relationship of the SUT in real-time. The time-varying chirp rate in each sweep period makes the signals with different frequencies have different frequency resolutions in the FTTM process, which is very similar to the characteristics of the wavelet transform, so we call it wavelet-like transform. An experiment is carried out. Multi-resolution time-frequency analysis of a variety of RF signals is carried out in a 4-GHz bandwidth limited only by the equipment.