TY - JOUR
T1 - Optimal digital controller and observer design for multiple time-delay transfer function matrices with multiple input-output time delays
AU - Wang, Hsun Pang
AU - Shieh, Leang San
AU - Tsai, Jason S.H.
AU - Zhang, Yongpeng
N1 - Funding Information:
This work was supported in part by the U.S. Army Research Office under grant W911NF-06-1-0507, by NSF under grant 0717860, and by the National Science Council of China under NSC 95-2221-E-006-109.
PY - 2008/5
Y1 - 2008/5
N2 - In this article, we address the optimal digital design methodology for multiple time-delay transfer function matrices with multiple input-output time delays. In our approach, the multiple time-delay analogue transfer function matrix with multiple input-output time delays is minimally realised using a continuous-time state-space model. For deriving an explicit form of the optimal digital controller, the realised continuous-time multiple input-output time-delay system is discretised, and an extended high-order discrete-time state-space model is constructed for discrete-time LQR design. To derive a low-order optimal digital observer for the multiple input-output time-delay system, the multiple time-delay state obtained from the multiple time-delay outputs is discretised. Then, the well-known duality concept is employed to design an optimal digital observer using the low-order discretised multiple input time-delay system together with the newly discretised multiple time-delay state. The proposed approach is restricted to multiple time-delay systems where multiple time delays arise only in the input and output, and not in the state.
AB - In this article, we address the optimal digital design methodology for multiple time-delay transfer function matrices with multiple input-output time delays. In our approach, the multiple time-delay analogue transfer function matrix with multiple input-output time delays is minimally realised using a continuous-time state-space model. For deriving an explicit form of the optimal digital controller, the realised continuous-time multiple input-output time-delay system is discretised, and an extended high-order discrete-time state-space model is constructed for discrete-time LQR design. To derive a low-order optimal digital observer for the multiple input-output time-delay system, the multiple time-delay state obtained from the multiple time-delay outputs is discretised. Then, the well-known duality concept is employed to design an optimal digital observer using the low-order discretised multiple input time-delay system together with the newly discretised multiple time-delay state. The proposed approach is restricted to multiple time-delay systems where multiple time delays arise only in the input and output, and not in the state.
UR - http://www.scopus.com/inward/record.url?scp=40849083693&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=40849083693&partnerID=8YFLogxK
U2 - 10.1080/00207720701832564
DO - 10.1080/00207720701832564
M3 - Article
AN - SCOPUS:40849083693
SN - 0020-7721
VL - 39
SP - 461
EP - 476
JO - International Journal of Systems Science
JF - International Journal of Systems Science
IS - 5
ER -