The inseparable three and four tops
Abstract
In measurements of four-top-quark production (), LHC collaborations observe a significant degeneracy with three-top-quark production. We compute the dominant three-top-production mode, namely associated production with a boson (), at complete next-to-leading order (NLO), including all possible QCD and electroweak (EW) corrections. Beyond leading order (LO), production with the radiation of an additional -flavoured quark contributes to the same final state as production with a decay. Away from the on-shell top-quark limit, the usual overlap removal of resonant contributions in the non-resonant computation either breaks gauge invariance and generates unitarity violation or involves a significant arbitrariness in the required reshuffling of momenta. To overcome these issues, we introduce a novel window-removal prescription that produces consistent predictions for the inseparable process, with both components described at NLO accuracy. We argue that such a joint prediction should be used in comparisons with experimental selections targeting production, since the on-shell component can not be isolated in practice. Such a joint prediction has an inclusive rate more than 10% higher than the purely on-shell one. We also study an idealised veto on additional hard and central -jet radiation, which suppresses the contributions of resonant diagrams as well as their interference with non-resonant ones and therefore defines a relatively pure -like signal region. Formally subleading coupling orders are numerically important at LO, while the corresponding subleading NLO corrections largely cancel both inclusively and differentially. Consequently, the complete-NLO prediction is well approximated by retaining the first three LO coupling orders together with the leading QCD NLO correction.
Cite
@article{arxiv.2607.27323,
title = {The inseparable three and four tops},
author = {Gauthier Durieux and Hesham El Faham and Rikkert Frederix and Davide Pagani and Marco Zaro},
journal= {arXiv preprint arXiv:2607.27323},
year = {2026}
}
Comments
23 pages, 14 figures, 1 table