DocumentCode :
2241615
Title :
Robust R-D parameter estimation via closed-form PARAFAC
Author :
Da Costa, João Paulo C L ; Roemer, Florian ; Weis, Martin ; Haardt, Martin
Author_Institution :
Commun. Res. Lab., Ilmenau Univ. of Technol., Ilmenau, Germany
fYear :
2010
fDate :
23-24 Feb. 2010
Firstpage :
99
Lastpage :
106
Abstract :
R-dimensional parameter estimation problems are common in a variety of signal processing applications. In order to solve such problems, we propose a robust multidimensional model order selection scheme and a robust multidimensional parameter estimation scheme using the closed-form PARAFAC algorithm, which is a recently proposed way to compute the PARAFAC decomposition based on several simultaneous diagonalizations. In general, R-dimensional (R-D) model order selection (MOS) techniques, e.g., the R-D Exponential Fitting Test (R-D EFT), are designed for multidimensional data by taking into account its multidimensional structure. However, the R-D MOS techniques assume that the data is contaminated by white Gaussian noise. To deal with colored noise, we propose the closed-form PARAFAC based model order selection (CFP-MOS) technique based on multiple estimates of the factor matrices provided as an intermediate step by the closed-form PARAFAC algorithm. Additionally, we propose the closed-form PARAFAC based parameter estimator (CFP-PE), which can be applied to extract spatial frequencies in case of arbitrary array geometries.
Keywords :
Gaussian noise; parameter estimation; signal processing; R-dimensional parameter estimation; arbitrary array geometries; closed-form PARAFAC; model order selection; robust R-D parameter estimation; signal processing; white Gaussian noise; Colored noise; Frequency estimation; Gaussian noise; Geometry; Multidimensional signal processing; Multidimensional systems; Parameter estimation; Robustness; Signal processing algorithms; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Smart Antennas (WSA), 2010 International ITG Workshop on
Conference_Location :
Bremen
Print_ISBN :
978-1-4244-6070-0
Electronic_ISBN :
978-1-4244-6071-7
Type :
conf
DOI :
10.1109/WSA.2010.5456382
Filename :
5456382
Link To Document :
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