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STFT With Adaptive Window Width Based on the Chirp Rate

机译:基于线性调频率的具有自适应窗口宽度的STFT

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摘要

An adaptive time-frequency representation (TFR) with higher energy concentration usually requires higher complexity. Recently, a low-complexity adaptive short-time Fourier transform (ASTFT) based on the chirp rate has been proposed. To enhance the performance, this method is substantially modified in this paper: i) because the wavelet transform used for instantaneous frequency (IF) estimation is not signal-dependent, a low-complexity ASTFT based on a novel concentration measure is addressed; ii) in order to increase robustness to IF estimation error, the principal component analysis (PCA) replaces the difference operator for calculating the chirp rate; and iii) a more robust Gaussian kernel with time-frequency-varying window width is proposed. Simulation results show that our method has higher energy concentration than the other ASTFTs, especially for multicomponent signals and nonlinear FM signals. Also, for IF estimation, our method is superior to many other adaptive TFRs in low signal-to-noise ratio (SNR) environments.
机译:具有较高能量集中的自适应时频表示(TFR)通常需要较高的复杂度。近来,已经提出了基于线性调频率的低复杂度自适应短时傅立叶变换(ASTFT)。为了提高性能,本文对该方法进行了实质性的修改:i)由于用于瞬时频率(IF)估计的小波变换与信号无关,因此解决了基于新型浓度测量的低复杂度ASTFT; ii)为了增加对IF估计误差的鲁棒性,主成分分析(PCA)代替了差值算子来计算线性调频率; iii)提出了一种具有更强健的高斯核,具有随时间-频率变化的窗口宽度。仿真结果表明,该方法具有比其他ASTFT更高的能量集中度,特别是对于多分量信号和非线性FM信号而言。同样,对于IF估计,我们的方法在低信噪比(SNR)环境中优于许多其他自适应TFR。

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