首页> 外文期刊>Photonics Technology Letters, IEEE >Ultrafast All-Optical Wavelet Transform Based on Temporal Pulse Shaping Incorporating a 2-D Array of Cascaded Linearly Chirped Fiber Bragg Gratings
【24h】

Ultrafast All-Optical Wavelet Transform Based on Temporal Pulse Shaping Incorporating a 2-D Array of Cascaded Linearly Chirped Fiber Bragg Gratings

机译:基于时间脉冲整形并结合级联线性Chi光纤光栅的二维阵列的超快全光小波变换

获取原文
获取原文并翻译 | 示例
           

摘要

An all-optical wavelet transformer used to analyze a high-speed and broadband electrical signal is proposed and demonstrated for the first time to our knowledge. The wavelet transform is implemented based on a temporal pulse shaping system incorporating a 2-D array of cascaded linearly chirped fiber Bragg gratings (LCFBGs). An electrical signal to be analyzed is applied to a Mach-Zehnder modulator to modulate the optical spectrum of a time-stretched optical pulse from a mode-locked laser. Each individual LCFBG in the 2-D array functions as a wavelet filter to filter a specific range of the spectrum, which is equivalent to applying a window function to the corresponding section of the temporal signal, and at the same time, as a dispersive element to perform real-time Fourier transform. A Mexican Hat wavelet is employed to implement the optical wavelet transform, which can be achieved based on a specially designed LCFBG. A theoretical analysis is performed which is verified by a proof-of-concept experiment. The key feature of this technique is that it can perform multiresolution time-frequency analysis of an ultrahigh-speed electrical signal, which can give good time resolution for high-speed signals, and good frequency resolution for low-speed signals.
机译:据我们所知,首次提出并演示了一种用于分析高速宽带电信号的全光学小波变换器。小波变换是基于时间脉冲整形系统实现的,该系统结合了级联线性chi光纤布拉格光栅(LCFBG)的二维阵列。将要分析的电信号施加到Mach-Zehnder调制器,以调制来自锁模激光器的时间拉伸光脉冲的光谱。 2-D阵列中的每个单独LCFBG都用作小波滤波器,以过滤特定范围的频谱,这等效于将窗函数应用于时间信号的相应部分,并同时用作色散元素执行实时傅立叶变换。使用墨西哥帽小波来实现光学小波变换,可以基于特殊设计的LCFBG来实现。进行了理论分析,并通过概念验证实验进行了验证。该技术的关键特性是它可以对超高速电信号执行多分辨率时频分析,从而可以为高速信号提供良好的时间分辨率,而为低速信号提供良好的频率分辨率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号