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RIS citation export for SUSPFO005: Norm-optimal Iterative Learning Control to Cancel Beam Loading Effect on the Accelerating Field

TY  - CONF
AU  - Shahriari, Z.
AU  - Dumont, G.A.
AU  - Fong, K.
ED  - Boland, Mark
ED  - Tanaka, Hitoshi
ED  - Button, David
ED  - Dowd, Rohan
ED  - Schaa, Volker RW
ED  - Tan, Eugene
TI  - Norm-optimal Iterative Learning Control to Cancel Beam Loading Effect on the Accelerating Field
J2  - Proc. of IPAC2019, Melbourne, Australia, 19-24 May 2019
CY  - Melbourne, Australia
T2  - International Particle Accelerator Conference
T3  - 10
LA  - english
AB  - Iterative learning control (ILC) is an open loop control strategy that improves the performance of a repetitive system through learning from previous iterations. ILC can be used to compensate for a repetitive disturbance like the beam loading effect in resonators. In this work, we aim to use norm-optimal ILC to cancel beam loading effect. Norm-optimal ILC updates the control signal with the goal of minimizing a performance index, which results in monotonic convergence. Simulation results show that this controller improves beam loading compensation compared to a PI controller.
PB  - JACoW Publishing
CP  - Geneva, Switzerland
SP  - 3824
EP  - 3826
DA  - 2019/06
PY  - 2019
SN  - 978-3-95450-208-0
DO  - DOI: 10.18429/JACoW-IPAC2019-THPRB011
UR  - http://jacow.org/ipac2019/papers/thprb011.pdf
ER  -