TY - JOUR
T1 - Development of systematic uncertainty-aware neural network trainings for binned-likelihood analyses at the LHC
AU - The CMS Collaboration
AU - Chekhovsky, V.
AU - Hayrapetyan, A.
AU - Makarenko, V.
AU - Tumasyan, A.
AU - Adam, W.
AU - Kirschenmann, H.
AU - Österberg, K.
AU - Voutilainen, M.
AU - Brücken, Erik
AU - Garcia, F.
AU - Heikkilä, Jaana
AU - Inkaew, Patin
AU - Kallonen, Kimmo
AU - Lampén, T.
AU - Lassila-Perini, K.
AU - Laurila, S.
AU - Lehti, S.
AU - Lindén, T.
AU - Luukka, P.
AU - Martikainen, Laura
AU - Myllymäki, Mikael Erkki Johannes
AU - Norjoharuddeen, Nurfikri
AU - Rantanen, Milla-Maarit
AU - Tuominiemi, J.
AU - Viinikainen, Jussi
AU - Petrow, H.
PY - 2025/11/26
Y1 - 2025/11/26
N2 - We propose a neural network training method capable of accounting for the effects of systematic variations of the data model in the training process and describe its extension towards neural network multiclass classification. The procedure is evaluated on the realistic case of the measurement of Higgs boson production via gluon fusion and vector boson fusion in the ττ decay channel at the CMS experiment. The neural network output functions are used to infer the signal strengths for inclusive production of Higgs bosons as well as for their production via gluon fusion and vector boson fusion. We observe improvements of 12 and 16% in the uncertainty in the signal strengths for gluon and vector-boson fusion, respectively, compared with a conventional neural network training based on cross-entropy.
AB - We propose a neural network training method capable of accounting for the effects of systematic variations of the data model in the training process and describe its extension towards neural network multiclass classification. The procedure is evaluated on the realistic case of the measurement of Higgs boson production via gluon fusion and vector boson fusion in the ττ decay channel at the CMS experiment. The neural network output functions are used to infer the signal strengths for inclusive production of Higgs bosons as well as for their production via gluon fusion and vector boson fusion. We observe improvements of 12 and 16% in the uncertainty in the signal strengths for gluon and vector-boson fusion, respectively, compared with a conventional neural network training based on cross-entropy.
KW - 114 Physical sciences
U2 - 10.1140/epjc/s10052-025-14713-w
DO - 10.1140/epjc/s10052-025-14713-w
M3 - Article
SN - 1434-6044
VL - 85
JO - European Physical Journal C. Particles and Fields
JF - European Physical Journal C. Particles and Fields
IS - 11
M1 - 1360
ER -