4.6 Article

Robust Time-Frequency Analysis of Multiple FM Signals With Burst Missing Samples

Journal

IEEE SIGNAL PROCESSING LETTERS
Volume 26, Issue 8, Pages 1172-1176

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/LSP.2019.2922500

Keywords

Time-frequency analysis; burst missing samples; atomic norm; sparse reconstruction; nonstationary signal

Funding

  1. National Science Foundation (NSF) [AST-1547420]

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In this letter, we consider the sparsity-based time-frequency representation (TFR) of frequency-modulated (FM) signals in the presence of burst missing samples. In the proposed method, three key procedures are used to mitigate the effect of missing samples. First, each slice in the instantaneous autocorrelation function (IAF) corresponding to the time or lag domain is converted to a Hankel matrix, and whose missing entries are recovered via the atomic norm-based approach. Second, a signal-adaptive time-frequency kernel is used to mitigate the undesired cross terms and the residual artifacts due to missing samples. Third, we apply a rank deduction technique on the obtained IAF to provide reliable TFR reconstruction results.

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