Dynamic Range Improvement of Backscattered Optical Signals using Signal Processing Techniques

Ramji Tangudu, P. Sahu
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引用次数: 3

Abstract

Optical fiber-based instruments like optical time domain reflectometry (OTDR) and distributed fiber optic sensing (DFOS) systems are widely in use over the last two decades. OTDR is critical for optical fiber testing and troubleshooting in an optical network. Besides integrity testing, one can also measure the splice losses, length of the fiber under test and the fault identification over an optical network. Similarly, the DFOS is used to detect the surrounding environmental parameters, such as temperature, strain, and vibration, etc. Both the systems as mentioned above can be designed based on the backscattering signals. However, as the signals are very weak, it poses major design challenges for designing such systems. To improve the signal to noise ratio (SNR) as well as the dynamic range of backscattering based systems, we have proposed and implemented two signal processing techniques (translation invariant wavelet thresholding (TIWT) and lifting wavelet transform-modified particle swarm optimization (LWT-MPSO)). With the TIWT signal processing technique, we have achieved a L68 dB of dynamic range improvement for Rayleigh and Brillouin backscattered signals respectively and with the LWT-MPSO signal processing technique, we have achieved a 4.03 dB of dynamic range improvement for Rayleigh and Brillouin backscattered signals respectively. For this work, a single-mode fiber (SMF) is used along with a 13 dBm of laser source power for experimenting. The signal processing techniques were implemented using MATLAB 15.0 platform.
利用信号处理技术提高后向散射光信号的动态范围
在过去的二十年里,基于光纤的仪器,如光时域反射仪(OTDR)和分布式光纤传感(DFOS)系统得到了广泛的应用。在光纤网络中,OTDR是光纤测试和故障排除的关键。除了完整性测试外,还可以测量光网络上的接头损耗、被测光纤的长度和故障识别。同样,DFOS用于检测周围的环境参数,如温度、应变、振动等。上述两种系统都可以基于后向散射信号进行设计。然而,由于信号非常微弱,这给设计这样的系统带来了重大的设计挑战。为了提高后向散射系统的信噪比(SNR)和动态范围,提出并实现了平移不变小波阈值(TIWT)和提升小波变换修正粒子群优化(LWT-MPSO)两种信号处理技术。利用TIWT信号处理技术,我们对瑞利和布里渊后向散射信号分别实现了L68 dB的动态范围改进;利用LWT-MPSO信号处理技术,我们对瑞利和布里渊后向散射信号分别实现了4.03 dB的动态范围改进。在这项工作中,使用单模光纤(SMF)和13 dBm的激光源功率进行实验。信号处理技术在MATLAB 15.0平台上实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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