基于VMD融合降噪的FBG光谱寻峰算法
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1.北京信息科技大学光纤传感与系统北京实验室北京100016; 2.北京信息科技大学北京市光电测试技术重点实验室北京100192

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TH74TP212

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北京学者计划研究项目(BJXZ2021-012-00046)资助


A FBG spectral peak-finding algorithm based on VMD fused noise reduction
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1.Beijing Laboratory of Optical Fiber Sensing and System, Beijing Information Science & Technology University, Beijing 100016,China; 2.Beijing Key Laboratory of Optoelectronic Measurement Technology, Beijing Information Science & Technology University, Beijing 100192, China

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    摘要:

    针对基于CCD的光谱衍射法对光纤布拉格光栅解调过程中受到噪声干扰,导致FBG中心波长解调精度和稳定性降低的问题,提出了一种基于变分模态分解的VMD-WT-SG融合降噪算法。通过结合不同降噪算法的优势以及算法参数的调整,实现了对光谱信号中噪声成分的有效去除,在保留原始信号大部分特征的同时光谱波形更加平滑和连续,降噪效果明显。与传统的VMD降噪、SG降噪、Kalman滤波3种方法对比,经VMD-WT-SG融合降噪法处理后的光谱信噪比为20.14 dB,均方根误差为0.017,信噪比分别提升了23.94%、41.14%和94.97%,均方根误差分别降低了39.29%、45.16%和67.92%,在4种降噪方法中效果最好。为了提高解调速率,在常用寻峰算法的基础上,提出了一种针对降噪后多峰光谱的中垂线相交寻峰算法,通过计算峰值点与左、右次大值点连线的中垂线的交点坐标来求取中心波长。并通过实验与多项式拟合、质心、高斯拟合算法对比了寻峰精度。结果表明提出的算法平均寻峰偏差为3.3 pm,优于质心法与多项式拟合法,算法平均运行时间为0.261 ms,优于多项式拟合法和高斯拟合法。实时应用中在保证精度的同时解调速率可达4 kHz,同时该算法的稳定性较好,解调的波长平均标准差为1.8 pm,能够满足实际应用的需求,对FBG传感网络中的多峰值实时快速检测具有一定的参考价值。

    Abstract:

    To address the noise interference during the demodulation of fiber Bragg grating (FBG) by the CCD-based spectral diffraction method, which leads to the reduction of the demodulation accuracy and stability of FBG center wavelength, a fusion noise reduction algorithm based on the variational mode decomposition (VMD-WT-SG) is proposed. By combining the advantages of different noise reduction algorithms and adjusting algorithm parameters, the effective removal of noise components in the spectral signals is realized. The spectral waveforms are smoother and more continuous while retaining most of the features of the original signals, and the noise reduction effectiveness is obvious. Compared with the traditional three methods, such as the VMD noise reduction, the SG noise reduction, and the Kalman filter, the spectral SNR of the spectral signal-to-noise ratio processed by the VMD fusion noise reduction method (VMD-WT-SG) is 20.14 dB, and the root-mean-square error is 0.017. The signal-to-noise ratio is improved by 23.94%, 41.14%, and 94.97%, respectively. The root mean square error is reduced by 39.29%, 45.16%, and 67.92%, respectively. It is the best among the four noise reduction methods. To improve the demodulation rate, an intersection peak-finding algorithm is proposed for the noise-reduced multi-peak spectra based on the commonly used peak-finding algorithm. The center wavelength is obtained by calculating the coordinates of the intersection of the peaks with the intersection of the left and right sag lines of the next largest points. The peak-finding accuracy is compared with the polynomial fitting, the center-of-mass, and the Gaussian fitting algorithms through experiments. The results show that the average peak-finding deviation of the proposed algorithm is 3.3 pm, which is better than that of the center-of-mass and the polynomial fitting. The average running time of the algorithm is 0.261 ms, which is better than those of the polynomial fitting and the Gaussian fitting. In real-time applications, the demodulation rate can reach 4 kHz while ensuring accuracy, Meanwhile, the algorithm has good stability, the average standard deviation of the demodulated wavelengths is 1.8 pm, and it can meet the requirements of practical applications, which has some reference values for the fast multi-peak real-time detection in the FBG sensing networks.

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潘红宇,吕峥,欧建臻,徐春锋,祝连庆.基于VMD融合降噪的FBG光谱寻峰算法[J].仪器仪表学报,2025,46(4):260-269

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  • 在线发布日期: 2025-06-23
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