Sparse generalized pencil of function and its application to system identification and structural health monitoring
Name
Sparce generalized pencil.pdf
Size
3.08 MB
Format
Adobe PDF
Checksum (MD5)
9f940caf81d7d8ea3f92784c4c38ce00
Author(s) •
Buyukozturk, Oral
Mohammadi Ghazi Mahalleh, Reza
Date Issued
April 2016
Journal
Proceedings of SPIE 9805, Health Monitoring of Structural and Biological Systems 2016
Publisher
Society of Photo-Optical Instrumentation Engineers (SPIE)
Citation
Mohammadi-Ghazi, Reza, and Oral Buyukozturk. “Sparse Generalized Pencil of Function and Its Application to System Identification and Structural Health Monitoring.” Proceedings of SPIE 9805, Health Monitoring of Structural and Biological Systems 2016, 20 March, Las Vegas, Nevada, SPIE, 2016. © 2016 SPIE
Version
Final published version
Abstract
ingularity expansion method (SEM) is a system identification approach with applications in solving inverse scattering problems, electromagnetic interaction problems, remote sensing, and radars. In this approach, the response of a system is represented in terms of its complex poles; therefore, this method not only extracts the fundamental frequencies of the system from the signal, but also provides sufficient information about system's damping if its transient response is analyzed. There are various techniques in SEM among which the generalized pencil-of-function (GPOF) is the computationally most stable and the least sensitive one to noise. However, SEM methods, including GPOF, suffer from imposition of spurious poles on the expansion of signals due to the lack of apriori information about the number of true poles. In this study we address this problem by proposing sparse generalized pencil-of-function (SGPOF). The proposed method excludes the spurious poles through sparsity-based regularization with ℓ1-norm. This study is backed by numerical examples as well as an application example which employs the proposed technique for structural health monitoring (SHM) and compares the results with other signal processing methods.
MIT Department
Massachusetts Institute of Technology. Department of Civil and Environmental Engineering
Terms of Use
Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use.
Persistent DSpace Link
DOI of Published Version
https://doi.org/10.1117/12.2218893