A novel aliasing-free subband information fusion approach for wideband sparse spectral estimation

نویسندگان

  • Ji-an Luo
  • Xiao-Ping Zhang
  • Zhi Wang
چکیده

Wideband sparse spectral estimation is generally formulated as a multi-dictionary/multi-measurement (MD/MM) problem which can be solved by using group sparsity techniques. In this paper, the MD/MM problem is reformulated as a single sparse indicative vector (SIV) recovery problem at the cost of introducing an additional system error. Thus, the number of unknowns is reduced greatly. We show that the system error can be neglected under certain conditions. We then present a new subband information fusion (SIF) method to estimate the SIV by jointly utilizing all the frequency bins. With orthogonal matching pursuit (OMP) leveraging the binary property of SIV’s components, we develop a SIF-OMP algorithm to reconstruct the SIV. The numerical simulations demonstrate the performance of the proposed method.

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عنوان ژورنال:
  • EURASIP J. Adv. Sig. Proc.

دوره 2017  شماره 

صفحات  -

تاریخ انتشار 2017