DocumentCode :
3064215
Title :
Numerical Evaluation of the “Dual-Kernel, counter-flow” matric convolution integral that arises in Discrete/Continuous (D/C) control theory
Author :
Nixon, D.D. ; Johnson, C.D.
Author_Institution :
Marshall Space Flight Center, NASA, Huntsville, AL
fYear :
2009
fDate :
15-17 March 2009
Firstpage :
285
Lastpage :
290
Abstract :
Discrete/Continuous (D/C) control theory is a new generalized theory of discrete-time control that expands the concept of conventional (exact) discrete-time control so that actuator commands need not be constant between control decisions, but can be more generally defined and implemented as functions that vary with time across each sample period in some beneficial manner. Because the plant/control system construct contains two linear subsystems arranged in tandem, a novel ldquodual-kernel counter-flowrdquo convolution integral appears in the formulation; and, as part of the D/C control design and implementation process, numerical evaluation of that integral over each sample period is required. Three fundamentally different evaluation methods and associated algorithms are derived for the constant-coefficient case, and numerical results are matched against three available examples that have closed-form solutions.
Keywords :
continuous time systems; control system synthesis; discrete time systems; continuous control theory; control design; counter-flow matric convolution integral; discrete control theory; discrete-time control; dual-kernel counter-flow; Actuators; Closed-form solution; Control design; Control system synthesis; Control systems; Control theory; Convolution; Differential equations; NASA; Standards development;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
System Theory, 2009. SSST 2009. 41st Southeastern Symposium on
Conference_Location :
Tullahoma, TN
ISSN :
0094-2898
Print_ISBN :
978-1-4244-3324-7
Electronic_ISBN :
0094-2898
Type :
conf
DOI :
10.1109/SSST.2009.4806797
Filename :
4806797
Link To Document :
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