TY - GEN
T1 - Loop transfer recovery for general nonminium phase discrete time systems. Part 2. Design
AU - Chen, Ben M.
AU - Saberi, Ali
AU - Sannuti, Peddapullaiah
AU - Shamash, Yacov
PY - 1992
Y1 - 1992
N2 - This part focuses on the design of controllers for the recovery of target loop transfer function or sensitivity and complimentary sensitivity functions for general nonminimum phase discrete time systems. For general systems, loop transfer recovery is not completely feasible although there exists considerable amount of freedom to shape the inevitable recovery error. Here the necessary design constraints and the available design freedom are reviewed. In view of the available freedom, possible specifications on the eigenstructure of the observer dynamic matrix are formulated. Three different types of controllers which are respectively based on prediction, current and reduced order estimators, are considered. For each one of such controllers, three different design techniques are developed. The first one is an eigenstructure assignment scheme, and the other two are optimization based designs. Eigenstructure assignment method yields a controller design which achieves any chosen recovery error matrix among a set of admissible recovery error matrices. On the other hand, one of the optimization based design methods leads to a controller that achieves a recovery error matrix having the infimum H∞ norm, while the other does the same except it achieves a recovery error matrix having the infimum H2 norm. All the developed design methods are implemented in a 'Matlab' software package.
AB - This part focuses on the design of controllers for the recovery of target loop transfer function or sensitivity and complimentary sensitivity functions for general nonminimum phase discrete time systems. For general systems, loop transfer recovery is not completely feasible although there exists considerable amount of freedom to shape the inevitable recovery error. Here the necessary design constraints and the available design freedom are reviewed. In view of the available freedom, possible specifications on the eigenstructure of the observer dynamic matrix are formulated. Three different types of controllers which are respectively based on prediction, current and reduced order estimators, are considered. For each one of such controllers, three different design techniques are developed. The first one is an eigenstructure assignment scheme, and the other two are optimization based designs. Eigenstructure assignment method yields a controller design which achieves any chosen recovery error matrix among a set of admissible recovery error matrices. On the other hand, one of the optimization based design methods leads to a controller that achieves a recovery error matrix having the infimum H∞ norm, while the other does the same except it achieves a recovery error matrix having the infimum H2 norm. All the developed design methods are implemented in a 'Matlab' software package.
UR - https://www.scopus.com/pages/publications/0027037726
M3 - Conference contribution
AN - SCOPUS:0027037726
SN - 0780302109
T3 - Proceedings of the American Control Conference
SP - 3108
EP - 3112
BT - Proceedings of the American Control Conference
PB - Publ by American Automatic Control Council
T2 - Proceedings of the 1992 American Control Conference
Y2 - 24 June 1992 through 26 June 1992
ER -