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142
result(s) for
"Lindert, J. M."
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Higgs boson pair production at NNLO with top quark mass effects
by
Heinrich, G.
,
Kerner, M.
,
Lindert, J. M.
in
Approximation
,
Classical and Quantum Gravitation
,
Collisions
2018
A
bstract
We consider QCD radiative corrections to Higgs boson pair production through gluon fusion in proton collisions. We combine the exact next-to-leading order (NLO) contribution, which features two-loop virtual amplitudes with the full dependence on the top quark mass
M
t
, with the next-to-next-to-leading order (NNLO) corrections computed in the large-
M
t
approximation. The latter are improved with different reweighting techniques in order to account for finite-
M
t
effects beyond NLO. Our reference NNLO result is obtained by combining one-loop double-real corrections with full
M
t
dependence with suitably reweighted real-virtual and double-virtual contributions evaluated in the large-
M
t
approximation. We present predictions for inclusive cross sections in
pp
collisions at
s
= 13, 14, 27 and 100 TeV and we discuss their uncertainties due to missing
M
t
effects. Our approximated NNLO corrections increase the NLO result by an amount ranging from +12% at
s
=
13
TeV to +7% at
s
=
100
TeV, and the residual uncertainty of the inclusive cross section from missing
M
t
effects is estimated to be at the few percent level. Our calculation is fully differential in the Higgs boson pair and the associated jet activity: we also present predictions for various differential distributions at
s
=
14
and 100 TeV, and discuss the size of the missing
M
t
effects, which can be larger, especially in the tails of certain observables. Our results represent the most advanced perturbative prediction available to date for this process.
Journal Article
Logarithmic EW corrections at one-loop
2024
We present a fully automated implementation of next-to-leading order electroweak (NLO EW) corrections in the logarithmic approximation in OpenLoops. For energies above the electroweak scale NLO EW corrections are logarithmically enhanced and in tails of kinematic distributions of crucial LHC processes yield correction factors of several tens of percent. The implementation of the logarithmic Sudakov EW approximation in the amplitude generator OpenLoops is fully general, largely model independent, it supports the computation of EW corrections to resonant processes, and it is suitable for extensions to the two-loop NNLO EW level. The implementation is based on an efficient representation of the logarithmic approximation in terms of an effective vertex approach. Investigating a set of representative LHC processes we find excellent agreement between the logarithmic approximation and full one-loop results in observables where the assumptions of the EW Sudakov approximation are fulfilled.
Journal Article
NLO QCD+EW predictions for V + jets including off-shell vector-boson decays and multijet merging
by
Maierhöfer, P.
,
Lindert, J. M.
,
Kallweit, S.
in
Automation
,
Bosons
,
Classical and Quantum Gravitation
2016
A
bstract
We present next-to-leading order (NLO) predictions including QCD and electroweak (EW) corrections for the production and decay of off-shell electroweak vector bosons in association with up to two jets at the 13 TeV LHC. All possible dilepton final states with zero, one or two charged leptons that can arise from off-shell W and Z bosons or photons are considered. All predictions are obtained using the automated implementation of NLO QCD+EW corrections in the O
pen
Loops matrix-element generator combined with the Munich and Sherpa Monte Carlo frameworks. Electroweak corrections play an especially important role in the context of BSM searches, due to the presence of large EW Sudakov logarithms at the TeV scale. In this kinematic regime, important observables such as the jet transverse momentum or the total transverse energy are strongly sensitive to multijet emissions. As a result, fixed-order NLO QCD+EW predictions are plagued by huge QCD corrections and poor theoretical precision. To remedy this problem we present an approximate method that allows for a simple and reliable implementation of NLO EW corrections in the MePs@Nlo multijet merging framework. Using this general approach we present an inclusive simulation of vector-boson production in association with jets that guarantees NLO QCD+EW accuracy in all phase-space regions involving up to two resolved jets.
Journal Article
NLO QCD+EW predictions for 2ℓ2ν diboson signatures at the LHC
by
Lindert, J. M.
,
Kallweit, S.
,
Pozzorini, S.
in
Classical and Quantum Gravitation
,
Elementary Particles
,
High energy physics
2017
A
bstract
We present next-to-leading order (NLO) calculations including QCD and electroweak (EW) corrections for 2
ℓ
2
ν
diboson signatures with two opposite-charge leptons and two neutrinos. Specifically, we study the processes
pp
→
e
+
μ
−
ν
e
ν
¯
μ
and
pp
→
e
+
e
−
ν
ν
¯
, including all relevant off-shell diboson channels,
W
+
W
−
,
ZZ
, γ
Z
, as well as non-resonant contributions. Photon-induced processes are computed at NLO EW, and we discuss subtle differences related to the definition and the renormalisation of the coupling
α
for processes with initial- and final-state photons. All calculations are performed within the automated M
unich
/S
herpa
+O
pen
L
oops
frameworks, and we provide numerical predictions for the LHC at 13 TeV. The behaviour of the corrections is investigated with emphasis on the high-energy regime, where NLO EW effects can amount to tens of percent due to large Sudakov logarithms. The interplay between
W W
and
ZZ
contributions to the same-flavour channel,
pp
→
e
+
e
−
ν
ν
¯
, is discussed in detail, and a quantitative analysis of photon-induced contributions is presented. Finally, we consider approximations that account for all sources of large logarithms, at high and low energy, by combining virtual EW corrections with a YFS soft-photon resummation or a QED parton shower.
Journal Article
NLO QCD+EW predictions for HV and HV +jet production including parton-shower effects
by
Granata, F.
,
Lindert, J. M.
,
Pozzorini, S.
in
Classical and Quantum Gravitation
,
Elementary Particles
,
High energy physics
2017
A
bstract
We present the first NLO QCD+EW predictions for Higgs boson production in association with a
ℓν
ℓ
or
ℓ
+
ℓ
−
pair plus zero or one jets at the LHC. Fixed-order NLO QCD+EW calculations are combined with a QCD+QED parton shower using the recently developed resonance-aware method in the POWHEG framework. Moreover, applying the improved MiNLO technique to
Hℓν
ℓ
+jet and
Hℓ
+
ℓ
−
+jet production at NLO QCD+EW, we obtain predictions that are NLO accurate for observables with both zero or one resolved jet. This approach permits also to capture higher-order effects associated with the interplay of EW corrections and QCD radiation. The behavior of EW corrections is studied for various kinematic distributions, relevant for experimental analyses of Higgsstrahlung processes at the 13 TeV LHC. Exact NLO EW corrections are complemented with approximate analytic formulae that account for the leading and next-to-leading Sudakov logarithms in the high-energy regime. In the tails of transverse-momentum distributions, relevant for analyses in the boosted Higgs regime, the Sudakov approximation works well, and NLO EW effects can largely exceed the ten percent level. Our predictions are based on the POWHEG BOX RES+OpenLoops framework in combination with the Pythia 8.1 parton shower.
Journal Article
Top-quark mass effects in H+jet and H+2 jets production
by
Kerner, M.
,
Lindert, J. M.
,
Jones, S. P.
in
Amplitudes
,
Classical and Quantum Gravitation
,
Elementary Particles
2022
A
bstract
We present calculations of Higgs boson production via gluon-gluon fusion in association with one or two additional jets at next-to-leading order in QCD. The calculation of
H
+jet is exact in the treatment of the top-quark mass, whereas for the
H
+2 jets calculation the two-loop virtual amplitudes are approximated via a reweighting with leading-order mass effects, while keeping all top-quark mass effects in the real radiation contributions. For
H
+jet production, this study extends a previous calculation, revealing an error in the previous results. For total and differential cross sections, we present new results and compare the QCD corrections with the infinite top-mass limit, for which we find a strikingly good agreement if all amplitudes are rescaled by the leading-order mass dependence.
Journal Article
Precise predictions for V + 2 jet backgrounds in searches for invisible Higgs decays
by
Lindert, J. M.
,
Pozzorini, S.
,
Schönherr, M.
in
Classical and Quantum Gravitation
,
Electroweak Precision Physics
,
Elementary Particles
2023
A
bstract
We present next-to-leading order QCD and electroweak (EW) theory predictions for
V
+ 2 jet production, with
V
=
Z, W
±
, considering both the QCD and EW production modes and their interference. We focus on phase-space regions where
V
+ 2 jet production is dominated by vector-boson fusion, and where these processes yield the dominant irreducible backgrounds in searches for invisible Higgs boson decays. Predictions at parton level are provided together with detailed prescriptions for their implementation in experimental analyses based on the reweighting of Monte Carlo samples. The key idea is that, exploiting accurate data for
W
+ 2 jet production in combination with a theory-driven extrapolation to the
Z
+ 2 jet process can lead to a determination of the irreducible background at the few-percent level. Particular attention is devoted to the estimate of the residual theoretical uncertainties due to unknown higher-order QCD and EW effects and their correlation between the different
V
+ 2 jet processes, which is key to improve the sensitivity to invisible Higgs decays.
Journal Article
A comparative study of Higgs boson production from vector-boson fusion
by
Huston, J.
,
Plätzer, S.
,
Ferrario Ravasio, S.
in
Classical and Quantum Gravitation
,
Comparative studies
,
Elementary Particles
2021
A
bstract
The data taken in Run II at the Large Hadron Collider have started to probe Higgs boson production at high transverse momentum. Future data will provide a large sample of events with boosted Higgs boson topologies, allowing for a detailed understanding of electroweak Higgs boson plus two-jet production, and in particular the vector-boson fusion mode (VBF). We perform a detailed comparison of precision calculations for Higgs boson production in this channel, with particular emphasis on large Higgs boson transverse momenta, and on the jet radius dependence of the cross section. We study fixed-order predictions at next-to-leading order and next-to-next-to-leading order QCD, and compare the results to NLO plus parton shower (NLOPS) matched calculations. The impact of the NNLO corrections on the central predictions is mild, with inclusive scale uncertainties of the order of a few percent, which can increase with the imposition of kinematic cuts. We find good agreement between the fixed-order and matched calculations in non-Sudakov regions, and the various NLOPS predictions also agree well in the Sudakov regime. We analyze backgrounds to VBF Higgs boson production stemming from associated production, and from gluon-gluon fusion. At high Higgs boson transverse momenta, the ∆
y
jj
and/or
m
jj
cuts typically used to enhance the VBF signal over background lead to a reduced efficiency. We examine this effect as a function of the jet radius and using different definitions of the tagging jets. QCD radiative corrections increase for all Higgs production modes with increasing Higgs boson
p
T
, but the proportionately larger increase in the gluon fusion channel results in a decrease of the gluon-gluon fusion background to electroweak Higgs plus two jet production upon requiring exclusive two-jet topologies. We study this effect in detail and contrast in particular a central jet veto with a global jet multiplicity requirement.
Journal Article
NNLO QCD + NLO EW with Matrix+OpenLoops: precise predictions for vector-boson pair production
by
Kallweit, S.
,
Pozzorini, S.
,
Wiesemann, M.
in
Classical and Quantum Gravitation
,
Elementary Particles
,
High energy physics
2020
A
bstract
We present the first combination of NNLO QCD and NLO EW corrections for vector-boson pair production at the LHC. We consider all final states with two, three and four charged leptons, including resonant and non-resonant diagrams, spin correlations and off-shell effects. Detailed predictions are discussed for three representative channels corresponding to
W
+
W
−
,
W
±
Z
and
Z Z
production. Both QCD and EW corrections are very significant, and the details of their combination can play a crucial role to achieve the level of precision demanded by experimental analyses. In this context we point out nontrivial issues that arise at large transverse momenta, where the EW corrections are strongly enhanced by Sudakov logarithms and the QCD corrections can feature so-called giant
K
-factors. Our calculations have been carried out in the M
atrix
+O
pen
L
oops
framework and can be extended to the production of an arbitrary colour singlet in hadronic collisions, provided that the required two-loop QCD amplitudes are available. Combined NNLO QCD and NLO EW predictions for the full set of massive diboson processes will be made publicly available in the next release of M
atrix
and will be instrumental in advancing precision diboson studies and new-physics searches at the LHC and future hadron colliders.
Journal Article
NLO corrections to squark-squark production and decay at the LHC
by
Lindert, J. M.
,
Pagani, D.
,
Hollik, W.
in
Approximation
,
Classical and Quantum Gravitation
,
Decomposition
2013
A
bstract
We present an analysis of the signature 2
j
+
T
(+
X
) via squark-squark production and direct decay into the lightest neutralino,
, in next-to-leading order QCD within the framework of the minimal supersymmetric standard model. In our approximation the produced squarks are treated on shell. Thus, the calculation of production and decay factorizes. In this way, we provide a consistent, fully differential calculation of NLO QCD factorizable corrections to the given processes. Clustering final states into partonic jets, we investigate the experimental inclusive signature 2
j
+
T
for several benchmark scenarios. We compare resulting differential distributions with leading-order approximations rescaled by a flat K-factor and examine a possible impact for cut-and-count searches for supersymmetry at the LHC.
Journal Article