DocumentCode
3524617
Title
Structured least squares with bounded data uncertainties
Author
Pilanci, M. ; Arikan, O. ; Oguz, B. ; Pinar, M.C.
Author_Institution
Dept. of Electr. & Electron. Eng., Bilkent Univ., Ankara
fYear
2009
fDate
19-24 April 2009
Firstpage
3261
Lastpage
3264
Abstract
In many signal processing applications the core problem reduces to a linear system of equations. Coefficient matrix uncertainties create a significant challenge in obtaining reliable solutions. In this paper, we present a novel formulation for solving a system of noise contaminated linear equations while preserving the structure of the coefficient matrix. The proposed method has advantages over the known Structured Total Least Squares (STLS) techniques in utilizing additional information about the uncertainties and robustness in ill-posed problems. Numerical comparisons are given to illustrate these advantages in two applications: signal restoration problem with an uncertain model and frequency estimation of multiple sinusoids embedded in white noise.
Keywords
least squares approximations; matrix algebra; signal processing; bounded data uncertainties; coefficient matrix uncertainties; frequency estimation; ill-posed problem; linear system of equations; noise contaminated linear equations; signal processing; signal restoration problem; structured least squares; structured total least squares techniques; uncertain model; white noise; Equations; Frequency estimation; Industrial electronics; Least squares methods; Maximum likelihood estimation; Noise robustness; Pollution measurement; Signal processing; Uncertainty; Vectors; bounded data uncertainties; inverse problems; robust solutions; structured perturbations; total least squares;
fLanguage
English
Publisher
ieee
Conference_Titel
Acoustics, Speech and Signal Processing, 2009. ICASSP 2009. IEEE International Conference on
Conference_Location
Taipei
ISSN
1520-6149
Print_ISBN
978-1-4244-2353-8
Electronic_ISBN
1520-6149
Type
conf
DOI
10.1109/ICASSP.2009.4960320
Filename
4960320
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