Proceedings of Loops and Legs in Quantum Field Theory — PoS(LL2018) 2018
DOI: 10.22323/1.303.0082
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Precision studies of vector-boson production with heavy quarks at the LHC: the case of $Z + b$ jet.

Abstract: After a brief introduction to the state of the art of theoretical predictions for electroweak vectorboson production with both top and bottom quarks at the LHC, we review the case of Z-boson production with b jets, and discuss the impact of NLO QCD+EW corrections and finite b-mass effects on the theoretical prediction for Z + b jet production.

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(2 citation statements)
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“…2.2. This process was examined by the authors using NLOX recently [52,53], where particular attention was paid to EW corrections and using a massive b quark. The corresponding fixed-order NLO QCD corrections were first calculated in [91].…”
Section: Pp → Jjmentioning
confidence: 99%
See 1 more Smart Citation
“…2.2. This process was examined by the authors using NLOX recently [52,53], where particular attention was paid to EW corrections and using a massive b quark. The corresponding fixed-order NLO QCD corrections were first calculated in [91].…”
Section: Pp → Jjmentioning
confidence: 99%
“…Recent calculations of NLO QCD and EW corrections to important SM processes obtained in these frameworks include the production of a Higgs boson with a pair of on-shell [41] or off-shell top quarks [42], of tt plus jets [43], of EW vector bosons with jets [44,45,46] or photons [47], of diphotons plus jets [48], of a pair of off-shell EW bosons [49], of W W W [50], and of four on-shell top-quarks or of top pairs with a W boson [51]. NLOX, the program described in this article, is a new program for the automated computation of one-loop QCD and EW corrections in the Standard Model, which has recently been used in the computation of QCD and EW corrections to Z + b-jet production [52,53], and further partook in a technical comparison of tools for the automation of NLO EW calculations [54]. A non-public predecessor of NLOX has been available in the past, to calculate one-loop QCD corrections to selected processes [55,56].…”
Section: Introductionmentioning
confidence: 99%