DocumentCode
1254968
Title
Simultaneous Schur decomposition of several nonsymmetric matrices to achieve automatic pairing in multidimensional harmonic retrieval problems
Author
Haardt, Martin ; Nossek, Josef A.
Author_Institution
Siemens AG, Munich, Germany
Volume
46
Issue
1
fYear
1998
fDate
1/1/1998 12:00:00 AM
Firstpage
161
Lastpage
169
Abstract
This paper presents a new Jacobi-type method to calculate a simultaneous Schur decomposition (SSD) of several real-valued, nonsymmetric matrices by minimizing an appropriate cost function. Thereby, the SSD reveals the “average eigenstructure” of these nonsymmetric matrices. This enables an R-dimensional extension of Unitary ESPRIT to estimate several undamped R-dimensional modes or frequencies along with their correct pairing in multidimensional harmonic retrieval problems. Unitary ESPRIT is an ESPRIT-type high-resolution frequency estimation technique that is formulated in terms of real-valued computations throughout. For each of the R dimensions, the corresponding frequency estimates are obtained from the real eigenvalues of a real-valued matrix. The SSD jointly estimates the eigenvalues of all R matrices and, thereby, achieves automatic pairing of the estimated R-dimensional modes via a closed-form procedure that neither requires any search nor any other heuristic pairing strategy. Moreover, we describe how R-dimensional harmonic retrieval problems (with R⩾3) occur in array signal processing and model-based object recognition applications
Keywords
array signal processing; direction-of-arrival estimation; eigenvalues and eigenfunctions; frequency estimation; harmonic analysis; matrix decomposition; object recognition; Jacobi-type method; R-dimensional extension; Unitary ESPRIT; array signal processing; automatic pairing; average eigenstructure; closed-form procedure; cost function minimization; high-resolution frequency estimation technique; model-based object recognition applications; multidimensional harmonic retrieval problems; nonsymmetric matrices; simultaneous Schur decomposition; undamped R-dimensional modes; Acoustic propagation; Azimuth; Delay estimation; Eigenvalues and eigenfunctions; Frequency estimation; Jacobian matrices; Matrix decomposition; Multidimensional signal processing; Radar signal processing; Transmission line matrix methods;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/78.651206
Filename
651206
Link To Document