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Optical Fiber Intrusion Signal Recognition Based on Improved Mel Frequency Cepstrum Coefficient

机译:基于改进的梅尔频率倒谱系数的光纤入侵信号识别

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Oil and gas resources pipelines, boundary lines and other places need to monitor their safety status in real time. The fiber early warning system becomes a good choice for its high sensitivity, corrosion resistance and concealment. The system provides early warning of the detection of fiber vibration signals. In this paper, an improved Mel frequency cepstrum coefficient (MFCC) method is proposed for the cepstrum characteristics recognition of different typical optical fiber vibration signals. Firstly, we pre-process the intrusion signals and obtain its power spectral density (PSD) to quantify the difference of frequency spectrum in respective intrusions. Secondly, the adaptive filter bank is designed according to the distribution of signal power spectrum to improve the conventional MFCC method. Through the analysis of the characteristic parameters, the MFCC coefficients are obtained. Finally, the Mean-crossing rates (MCR) of MFCC are calculated and the appropriate thresholds are selected to classify the typical vibration signals. Compared with the traditional MFCC, this improved MFCC method realizes adaptive division of frequency band according to the distribution of signal power spectrum. Experiments show that the algorithm can identify the manual signal, the mechanical signal and the vehicle signal in the research of the vibration signal recognition of the optical fiber pre-warning system (OFPS).
机译:油气资源管道,边界线等场所需要实时监控其安全状况。光纤预警系统因其高灵敏度,耐腐蚀和隐蔽性而成为一个不错的选择。该系统提供光纤振动信号检测的早期警告。本文提出了一种改进的梅尔频率倒谱系数(MFCC)方法,用于识别不同典型光纤振动信号的倒谱特性。首先,我们对入侵信号进行预处理,并获得其功率谱密度(PSD),以量化各个入侵中的频谱差异。其次,根据信号功率谱的分布设计自适应滤波器组,以改进传统的MFCC方法。通过特征参数的分析,获得了MFCC系数。最后,计算MFCC的平均穿越率(MCR),并选择适当的阈值对典型的振动信号进行分类。与传统的MFCC相比,这种改进的MFCC方法根据信号功率谱的分布实现了频段的自适应划分。实验表明,该算法在光纤预警系统(OFPS)的振动信号识别研究中可以识别人工信号,机械信号和车辆信号。

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