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Sparse Time-Frequency-Frequency-Rate Representation for Multicomponent Nonstationary Signal Analysis

机译:多分量非平稳信号分析的稀疏时间-频率-频率-速率表示

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Though high resolution time-frequency representations (TFRs) are developed and provide satisfactory results for multicomponent nonstationary signals, extracting multiple ridges from the time-frequency (TF) plot to approximate the instantaneous frequencies (IFs) for intersected components is quite difficult. In this work, the sparse time-frequency-frequency-rate representation (STFFRR) is proposed by using the short-time sparse representation (STSR) with the chirp dictionary. The instantaneous frequency rate (IFRs) and IFs of signal components can be jointly estimated via the STFFRR. As there are permutations between the IF and IFR estimates of signal components at different instants, the local k-means clustering algorithm is applied for component linking. By employing the STFFRR, the intersected components in TF plot can be well separated and robust IF estimation can be obtained. Numerical results validate the effectiveness of the proposed method.
机译:尽管开发了高分辨率的时频表示(TFR)并为多分量非平稳信号提供了令人满意的结果,但是从时频(TF)图中提取多个波峰来近似相交分量的瞬时频率(IF)还是很困难的。在这项工作中,通过将短时稀疏表示(STSR)与线性调频字典结合使用,提出了稀疏时频频率比率表示(STFFRR)。信号频率的瞬时频率率(IFR)和IF可以通过STFFRR联合估算。由于在不同时刻信号分量的IF和IFR估计之间存在置换,因此将局部k均值聚类算法应用于分量链接。通过使用STFFRR,可以很好地分离TF图中的相交分量,并获得可靠的IF估计。数值结果验证了该方法的有效性。

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