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An Improved VMD-Based Denoising Method for Time Domain Load Signal Combining Wavelet with Singular Spectrum Analysis

机译:一种改进的基于VMD的去噪方法,用于时域负荷信号与奇异谱分析组合小波分析

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Measured load data play a crucial role in the fatigue durability analysis of mechanical structures. However, in the process of signal acquisition, time domain load signals are easily contaminated by noise. In this paper, a signal denoising method based on variational mode decomposition (VMD), wavelet threshold denoising (WTD), and singular spectrum analysis (SSA) is proposed. Firstly, a simple criterion based on mutual information entropy (MIE) is designed to select the proper mode number for VMD. Detrended fluctuation analysis (DFA) is adopted to obtain the noise level of the noisy signal, which can optimize the selection of MIE threshold. Meanwhile, the noisy signal is adaptively decomposed into band-limited intrinsic mode functions (BLIMFs) by using VMD. In addition, weighted-permutation entropy (WPE) is applied to divide the BLIMFs into signal-dominant BLIMFs and noise-dominant BLIMFs. Then, the signal-dominant BLIMFs are reconstructed with the noise-dominant BLIMFs processed by WTD. Finally, SSA is implemented for the reconstructed signal. Experimental results of synthetic signals demonstrate that the presented method outperforms the conventional digital signal denoising methods and the related methods proposed recently. Effectiveness of the proposed method is verified through experiments of the measured load signals.
机译:测量的负荷数据在机械结构的疲劳耐久性分析中起着至关重要的作用。然而,在信号采集的过程中,时域负载信号容易被噪声污染。本文提出了一种基于变分模式分解(VMD),小波阈值去噪(WTD)和奇异频谱分析(SSA)的信号去噪方法。首先,设计基于互信息熵(MIE)的简单标准,用于选择VMD的适当模式编号。采用了减少波动分析(DFA)来获得噪声信号的噪声水平,可以优化MIE阈值的选择。同时,噪声信号通过使用VMD自适应地分解成带限量的内在模式功能(BLIMF)。另外,施加加权置换熵(WPE)以将Blimf分成信号 - 显性Blimf和噪声优势Blimf。然后,用WTD处理的噪声显性BLIMF重建信号主导BLIMF。最后,为重建信号实施SSA。合成信号的实验结果表明,呈现的方法优于传统的数字信号去噪方法和最近提出的相关方法。通过测量的负载信号的实验验证所提出的方法的有效性。

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