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HHT-Based Time-Frequency Analysis Method for Biomedical Signal Applications

机译:基于HHT的生物医学信号应用的时频分析方法

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Fourier transform, wavelet transformation, and Hilbert-Huang transformation (HHT) can be used to discuss the frequency characteristics of linear and stationary signals, the time-frequency features of linear and non-stationary signals, the time-frequency features of non-linear and non-stationary signals, respectively [1-6]. HHT is a combination of empirical mode decomposition (EMD) and Hilbert spectral analysis. EMD uses the characteristics of signals to adaptively decompose them to several intrinsic mode functions (IMFs). Hilbert transforms (HTs) are then used to transform the IMFs into instantaneous frequencies (IFs), to obtain the signal's time-frequency-energy distributions. HHT-based time-frequency analysis can be applied to natural physical signals such as earthquake waves, winds, ocean acoustic signals, mechanical diagnosis signals, and biomedical signals. In previous studies, we examined mobile telemedicine, chaos-based medical signal encryption, HHT-based time-frequency analysis of the electroencephalogram (EEG) signals of clinical alcoholics, and sharp wave based HHT time frequency features [7-21]. In this chapter, we discuss the application of HHT-based time-frequency analysis to biomedical signals such as EEG, and electrocardiogram (ECG) signals.
机译:傅立叶变换,小波变换,和希尔伯特 - 黄转换(HHT)可以用来讨论线性和稳态信号的频率特性,所述时间 - 频率线性和非平稳信号的特征中,所述时间 - 频率的非线性的功能和非稳态信号,分别[1-6]。 HHT是经验模式分解(EMD)和希尔伯特谱分析的组合。 EMD使用的信号的特征自适应地它们分解成几个固有模式函数(的IMF)。希尔伯特变换(HTS)随后被用于所述的IMF转换成瞬时频率(IFS),以获得信号的时间 - 频率 - 能量分布。基于HHT-时频分析可以应用于天然的物理信号,如地震波浪,风,海洋声学信号,机械信号诊断和生物医学信号。在以前的研究中,我们检查移动远程医疗,基于混沌的医学信号加密,脑波(EEG)临床酗酒者的信号,并且尖波基于HHT时间频率的基于HHT - 时间 - 频率分析功能[7-21]。在本章中,我们讨论了基于HHT - 时间 - 频率分析的生物医学信号,如EEG,和心电图(ECG)信号的应用。

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