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Space-frequency analysis with parallel computing in a phase-sensitive optical time-domain reflectometer distributed sensor

机译:相敏光时域反射仪分布式传感器中并行计算的空频分析

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For a phase-sensitive optical time-domain reflectometer (φ-OTDR) distributed sensor system, space-frequency analysis can reduce the false alarm by analyzing the frequency distribution compared with the traditional difference value method. We propose a graphics processing unit (GPU)-based parallel computing method to perform multichannel fast Fourier transform (FFT) and realize the real-time space-frequency analysis. The experiment results show that the time taken by the multichannel FFT decreased considerably based on this GPU parallel computing. The method can be completed with a sensing fiber up to 16 km long and an entry-level GPU. Meanwhile, the GPU can reduce the computing load of the central processing unit from 70% down to less than 20%. We carried out an experiment on a two-point space-frequency analysis, and the results clearly and simultaneously show the vibration point locations and frequency components. The sensor system outputs the real-time space-frequency spectra continuously with a spatial resolution of 16.3 m and frequency resolution of 2.25 Hz.
机译:对于相敏光时域反射仪(φ-OTDR)分布式传感器系统,与传统的差值方法相比,空频分析可以通过分析频率分布来减少误报。我们提出了一种基于图形处理器(GPU)的并行计算方法,以执行多通道快速傅里叶变换(FFT)并实现实时空频分析。实验结果表明,基于这种GPU并行计算,多通道FFT所花费的时间大大减少。该方法可以使用长达16 km的传感光纤和入门级GPU来完成。同时,GPU可以将中央处理器的计算负荷从70%降低到20%以下。我们进行了两点空间频率分析的实验,结果清楚并同时显示了振动点的位置和频率分量。传感器系统连续输出实时空间频谱,其空间分辨率为16.3 m,频率分辨率为2.25 Hz。

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