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RIS citation export for TUPOMS054: Data Augmentation for Breakdown Prediction in CLIC RF Cavities

TY  - CONF
AU  - Bovbjerg, H.S.
AU  - Apollonio, A.
AU  - Cartier-Michaud, T.
AU  - Millar, W.L.
AU  - Obermair, C.
AU  - Shen, M.
AU  - Tan, Z.H.
AU  - Wollmann, D.
ED  - Zimmermann, Frank
ED  - Tanaka, Hitoshi
ED  - Sudmuang, Porntip
ED  - Klysubun, Prapong
ED  - Sunwong, Prapaiwan
ED  - Chanwattana, Thakonwat
ED  - Petit-Jean-Genaz, Christine
ED  - Schaa, Volker R.W.
TI  - Data Augmentation for Breakdown Prediction in CLIC RF Cavities
J2  - Proc. of IPAC2022, Bangkok, Thailand, 12-17 June 2022
CY  - Bangkok, Thailand
T2  - International Particle Accelerator Conference
T3  - 13
LA  - english
AB  - One of the primary limitations on the achievable accelerating gradient in normal-conducting accelerator cavities is the occurrence of vacuum arcs, also known as RF breakdowns. A recent study on experimental data from the CLIC XBOX2 test stand at CERN proposes the use of supervised machine learning methods for predicting RF breakdowns. As RF breakdowns occur relatively infrequently during operation, the majority of the data was instead comprised of non-breakdown pulses. This phenomenon is known in the field of machine learning as class imbalance and is problematic for the training of the models. This paper proposes the use of data augmentation methods to generate synthetic data to counteract this problem. Different data augmentation methods like random transformations and pattern mixing are applied to the experimental data from the XBOX2 test stand, and their efficiency is compared.
PB  - JACoW Publishing
CP  - Geneva, Switzerland
SP  - 1553
EP  - 1556
KW  - operation
KW  - cavity
KW  - network
KW  - experiment
KW  - ECR
DA  - 2022/07
PY  - 2022
SN  - 2673-5490
SN  - 978-3-95450-227-1
DO  - doi:10.18429/JACoW-IPAC2022-TUPOMS054
UR  - https://jacow.org/ipac2022/papers/tupoms054.pdf
ER  -