Study on the fiber-optic perimeter sensor signal processor based on neural network classifier
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Presents a fiber-optic sensing alarm signal processing technology. It has great marketing demand because of the Optical-fiber sensor with high sensitivity, anti-electromagnetic interference, high corrosion resistance, etc. However, it is a problem about the false alarm to system. We use wavelet noise reduction technology and time-frequency domain features to construct the probabilistic neural network classifiers. The result shows it can largely reduce the false signals alarm.
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