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Time-varying Parameter-based Synchrosqueezing Wavelet Transform with the Approximation of Cubic Phase Functions

机译:基于时变参数的三次相位小波逼近小波变换

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Synchrosqueezing wavelet transform (SST) is a linear time-frequency analysis method, which aims to sharpen the distribution of the continuous wavelet transform (CWT) and separate multicomponent signals. In this paper, we propose a new SST algorithm with the time-varying parameters and second-order phase transform. More precisely, we analyze the separation abilities and conditions of CWT and SST by approximating a non-stationary signal with cubic phase functions. The optimal time-varying parameters are also proposed. The experimental results show the validity and efficiency of the proposed method, especially for multicomponent signals with fast varying frequencies.
机译:同步小波变换(SST)是一种线性时频分析方法,旨在锐化连续小波变换(CWT)和分离的多分量信号的分布。在本文中,我们提出了一种具有时变参数和二阶相位变换的新的SST算法。更准确地说,我们通过用立方相位函数近似非平稳信号来分析CWT和SST的分离能力和条件。还提出了最佳时变参数。实验结果证明了该方法的有效性和有效性,特别是对于频率快速变化的多分量信号。

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