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Improved Hilbert-Huang transform based weak signal detection methodology and its application on incipient fault diagnosis and ECG signal analysis

机译:改进的基于希尔伯特-黄变换的弱信号检测方法及其在早期故障诊断和心电信号分析中的应用

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摘要

In the present study, a weak signal detection methodology based on the improved Hilbert-Huang transform (HHT) was proposed. Aiming to restrain the end effects of empirical mode decomposition (EMD), wavelet analysis was embedded in iteration procedures of HHT to remove iterative errors as well as noise signal in the sifting process. Meanwhile, a new stopping criterion based on correlation analysis was proposed to remove undesirable intrinsic mode functions (IMFs). Results of analyzing synthetic signal, incipient rotor imbalance fault of Bently test-rig and weak electrocardiogram (ECG) signal show that the improved HHT combined with wavelet analysis have excellent weak signal detecting performance whilst achieving robustness against low signal-to-noise ratio (SNR). Furthermore, comparative studies of the proposed method, the classical EMD method, and other four generally acknowledged improved EMD methods, as well as a widely used stopping criterion demonstrate that the proposed method significantly reduces end effects and removes undesirable IMFs.
机译:在本研究中,提出了一种基于改进的希尔伯特-黄变换(HHT)的弱信号检测方法。为了抑制经验模态分解(EMD)的最终影响,小波分析被嵌入到HHT的迭代过程中,以消除滤波过程中的迭代误差和噪声信号。同时,提出了一种基于相关分析的新的停止准则,以消除不期望的固有模式函数(IMF)。分析综合信号,Bently试验台的初期转子失衡故障和弱心电图(ECG)信号的结果表明,改进的HHT与小波分析相结合,具有出色的弱信号检测性能,同时具有针对低信噪比(SNR)的鲁棒性)。此外,对所提出的方法,经典EMD方法以及其他四种公认的改进EMD方法以及广泛使用的停止标准的比较研究表明,所提出的方法显着降低了最终效应并消除了不良的IMF。

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