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Time-frequency representation of audio signals using Hilbert spectrum with effective frequency scaling

机译:使用希尔伯特频谱对音频信号进行时频表示以及有效的频率缩放

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The efficiency of Hilbert spectrum (HS) in time-frequency representation (TFR) of audio signals is investigated in this paper. HS is derived by applying empirical mode decomposition (EMD), a newly developed data adaptive method for nonlinear and non-stationary signal analysis together with Hilbert transform. EMD represents any time domain signal as a sum of a finite number of bases called intrinsic mode functions (IMFs). The instantaneous frequency responses of the IMFs derived through Hilbert transform are arranged to obtain the TFR of the analyzing signal yielding the HS. A new frequency scaling method is introduced here for proper interpretation of the energy spectra in HS. The performance of HS is compared with well known and widely used short-time Fourier transform (STFT) technique for TFR. The experimental results show that HS based method performs better than STFT in time-frequency representation of the audio signals
机译:本文研究了希尔伯特频谱(HS)在音频信号的时频表示(TFR)中的效率。 HS是通过应用经验模式分解(EMD)导出的,该模型是一种新开发的数据自适应方法,用于非线性和非平稳信号分析以及希尔伯特变换。 EMD将任何时域信号表示为称为固有模式函数(IMF)的有限数量的基数之和。通过希尔伯特变换获得的IMF的瞬时频率响应被安排来获得产生HS的分析信号的TFR。此处介绍了一种新的频率缩放方法,用于正确解释HS中的能谱。将HS的性能与广为人知的TFR的短时傅立叶变换(STFT)技术进行了比较。实验结果表明,基于HS的方法在音频信号的时频表示方面优于STFT。

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