2018 Asia Communications and Photonics Conference (ACP) 2018
DOI: 10.1109/acp.2018.8595809
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Artificial Intelligent Pattern Recognition for Optical Fiber Distributed Acoustic Sensing Systems Based on Phase-OTDR

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Cited by 13 publications
(4 citation statements)
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“…The difficulty in classifying such signals is determining the best ways to extract features, as acoustic signals are typically non-stationary and manual feature extraction requires expert knowledge. The largest signal-to-noise ratio of various mechanical impacts occurs at certain frequencies; therefore, using a band-pass filter to extract vibration signals and automatically extracting features from the filtered data using a convolution neural network (CNN) [ 6 , 7 , 8 , 9 ] may provide an effective method for the extraction of features.…”
Section: Introductionmentioning
confidence: 99%
“…The difficulty in classifying such signals is determining the best ways to extract features, as acoustic signals are typically non-stationary and manual feature extraction requires expert knowledge. The largest signal-to-noise ratio of various mechanical impacts occurs at certain frequencies; therefore, using a band-pass filter to extract vibration signals and automatically extracting features from the filtered data using a convolution neural network (CNN) [ 6 , 7 , 8 , 9 ] may provide an effective method for the extraction of features.…”
Section: Introductionmentioning
confidence: 99%
“…As the vibration is located through the intensity information, distributed vibration sensing (DVS) is realized [ 18 , 19 , 20 , 21 , 22 , 23 ]. Later developments showed that the demodulation of the phase will help us to obtain the waveform of the vibration with high definition, which is the basis of distributed acoustic sensing (DAS) [ 24 , 25 , 26 , 27 , 28 , 29 , 30 , 31 ]. DAS has been rapidly commercialized and widely considered in many industrial applications, including pipeline monitoring [ 32 , 33 , 34 , 35 , 36 , 37 , 38 , 39 ], railway and highway transportation [ 23 , 40 , 41 , 42 , 43 , 44 , 45 , 46 ], structural inspection [ 47 , 48 , 49 , 50 ], perimeter security [ 51 , 52 , 53 , 54 , 55 ], geophysics [ 56 , 57 , 58 , 59 , 60 , 61 , 62 , 63 , 64 , 65 , 66 , 67 <...…”
Section: Introductionmentioning
confidence: 99%
“…The 2 of 17 accuracy is 86%. In [10], Hongqiao Wen et al use a CNN to perform a spectrogram analysis. The problem to be solved is the classification of five types of events.…”
Section: Introductionmentioning
confidence: 99%