Probing triple Higgs coupling with machine learning at the LHC

Abstract

Measuring the triple Higgs coupling is a crucial task in the LHC and future collider experiments. We apply the Message Passing Neural Network (MPNN) to the study of the non-resonant Higgs pair production process pp hh in the final state with 2b + 2 + E T miss at the LHC. Although the MPNN can improve the signal significance, it is still challenging to observe such a process at the LHC. We find that a 2σ upper bound (including a 10\% systematic uncertainty) on the production cross section of the Higgs pair is 3.7 times the predicted SM cross section at the LHC with the luminosity of 3000 fb-1, which will limit the triple Higgs coupling to the range of [-3,11.5].

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