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AuthorOuelha, Samir
AuthorAissa-El-Bey, Abdeldjalil
AuthorBoashash, B.
Available date2020-11-04T08:52:35Z
Publication Date2017
Publication NameIEEE Transactions on Signal Processing
ResourceScopus
ISSN1053587X
URIhttp://dx.doi.org/10.1109/TSP.2017.2718974
URIhttp://hdl.handle.net/10576/16867
AbstractThis paper addresses the problem of direction of arrival (DOA) estimation and blind source separation (BSS) for nonstationary signals in the underdetermined case. These two problems are strongly related to the mixing matrix estimation problem. To deal with the nonstationary characteristics of signals, this study uses high-resolution quadratic time-frequency distributions (TFDs) to reduce cross-terms while keeping a good resolution for the construction of spatial TFDs. The main contributions of this paper are two-fold. First, the formulation of a statistical test for the noise thresholding step improves robustness and avoids the use of empirical parameters; this test performs multisource selection of the time-frequency points where the signal of interest is present. Second, an algorithm based on image processing methods performs an auto-source selection for mixing matrix estimation. The results on simulated signals demonstrate an improvement of 10 dB in terms of normalized mean square error for BSS and 7% in terms of relative error for DOA estimation over standard methods. 1 2017 IEEE.
Languageen
PublisherInstitute of Electrical and Electronics Engineers Inc.
Subjectblind source separation
direction of arrival estimation
high-resolution spatial TFDs
statistical noise thresholding
Time-frequency distribution
TitleImproving DOA Estimation Algorithms Using High-Resolution Quadratic Time-Frequency Distributions
TypeArticle
Pagination5179-5190
Issue Number19
Volume Number65


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