DocumentCode
184060
Title
State-feedback stabilizability characterization for switched positive linear systems via lagrange duality
Author
Najson, Federico
Author_Institution
Inst. de Ing. Electr., Univ. de la Republica, Montevideo, Uruguay
fYear
2014
fDate
4-6 June 2014
Firstpage
2631
Lastpage
2637
Abstract
A novel state-feedback exponential stabilizability characterization, for discrete-time switched positive linear systems, in terms of a linear mapping of the system modes is presented in this communication. Lagrange duality is used in order to prove that a switched positive linear system is state-feedback exponentially stabilizable if and only if there exists a linear mapping of the system modes whose range contains a Schur matrix. The characterization is specially suitable for state-feedback synthesis, and it further yields to the minimum number of linear functionals required to represent a stabilizing state-feedback mapping. It is furthermore proved that an upper bound for the aforementioned minimum number of linear functionals can be explicitly specified, and computed, in terms of a previously reported state-feedback exponential stabilizability condition. As a result of this constructive prove, a methodology for the synthesis of stabilizing state-feedback mappings (represented by the above mentioned upper bound minimum number of linear functionals) are also obtained.
Keywords
asymptotic stability; control system synthesis; discrete time systems; linear systems; matrix algebra; state feedback; Lagrange duality; Schur matrix; discrete-time switched positive linear systems; linear functionals; linear mapping; state-feedback exponential stabilizability characterization; state-feedback mapping; state-feedback synthesis; Closed loop systems; Linear systems; Lyapunov methods; Switched systems; Switches; Upper bound; Vectors; Stability of linear systems; Switched systems;
fLanguage
English
Publisher
ieee
Conference_Titel
American Control Conference (ACC), 2014
Conference_Location
Portland, OR
ISSN
0743-1619
Print_ISBN
978-1-4799-3272-6
Type
conf
DOI
10.1109/ACC.2014.6858913
Filename
6858913
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