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Reconstruction of Non-stationary Signals with Missing Samples Using Time-frequency Filtering

机译:使用时频滤波重建丢失样本的非平稳信号

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摘要

This study proposes a new time-frequency (TF) method for the recovery of missing samples from multicomponent signals. This is achieved by a combination of a sparsity-aware TF signal analysis method with TF filtering technique. A sparsity-aware TF method overcomes distortions caused by missing samples in the TF domain. This is followed by the use of TF filtering techniques for recovery of signals. All the extracted components are then combined to recover the complete signal. The proposed method outperforms other signal recovery methods such as gradient descent algorithm and matching pursuit.
机译:这项研究提出了一种新的时频(TF)方法,用于从多分量信号中恢复丢失的样本。这是通过将稀疏感知的TF信号分析方法与TF滤波技术相结合来实现的。稀疏感知TF方法克服了TF域中由于缺少样本而导致的失真。接下来是使用TF滤波技术恢复信号。然后将所有提取的分量合并以恢复完整信号。所提出的方法优于其他信号恢复方法,例如梯度下降算法和匹配追踪。

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