Title :
Finite frequency control of discrete linear repetitive processes with application in iterative learning control
Author :
Paszke, Wojciech
Author_Institution :
Inst. of Control & Comput. Eng., Univ. of Zielona Gora, Zielona Góra, Poland
Abstract :
For systems that repeatedly perform a given task, iterative learning control makes it possible to update the control signal to the system during successive trials in order to improve the tracking performance. Iterative learning control has an inherent two-dimensional/repetitive system structure since dynamics involves in two independent directions, i.e. time and trials. In this paper, the repetitive process structure is exploited in a method that results in a one step synthesis both a stabilizing feedback controller in the time domain and a feedforward controller which guarantees convergence in the trial domain. Furthermore, with the aid of the Generalized Kalman-Yakubovich-Popov lemma the controller design is performed in finite frequency range to determine which frequencies have to be emphasized in the learning process. The advantage of a proposed design method lies in the fact that it is presented in terms of solutions to a set of linear matrix inequalities which requires a reasonable computational cost to solve them. The effectiveness of the theoretical developments will be validated by considering a pick-and-place robot system as a practical application.
Keywords :
adaptive systems; control system synthesis; discrete systems; feedback; feedforward; frequency control; iterative methods; learning systems; linear matrix inequalities; linear systems; multidimensional systems; stability; time-domain analysis; controller design; discrete linear repetitive process; feedforward controller; finite frequency control; generalized Kalman-Yakubovich-Popov lemma; iterative learning control; linear matrix inequalities; pick-and-place robot system; repetitive system structure; stabilizing feedback controller; time domain; trial domain; two-dimensional system structure; Asymptotic stability; Frequency control; Frequency domain analysis; Linear matrix inequalities; Process control; Stability analysis; Symmetric matrices;
Conference_Titel :
Methods and Models in Automation and Robotics (MMAR), 2010 15th International Conference on
Conference_Location :
Miedzyzdroje
Print_ISBN :
978-1-4244-7828-6
DOI :
10.1109/MMAR.2010.5587249