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T. R. Wyatt

Publications and source records attributed to T. R. Wyatt.

4 recordsLinked to original sources

A self-calibrating, double-ratio method to test tau lepton universality in W boson decays at the LHC

Measurements in $W^+W^-$ events at LEP2 and in $B$ hadron semileptonic decays at B factories and LHCb provide intriguing hints of a violation of lepton universality in the charged current coupling of tau leptons relative to those for electrons and muons. We propose a novel, self-calibrating method to test tau lepton universality in $W$ boson decays at the LHC. We compare directly the ratio of the numbers of selected $\ell-τ$ and $e-μ$ final states in di-leptonic $tt$ events with that in $Z/γ^*\rightarrowτ^+τ^-$ events. Here $\ell=e$ or $μ$ and $τ$ is a candidate semi-hadronic tau decay. This "double-ratio" cancels to first order sensitivity to systematic uncertainties on the reconstruction of $e$, $μ$, and $τ$ leptons, thus improving very significantly the precision to which tau lepton universality can be tested in $W$ boson decay branching ratios at the LHC. Using particle-level Monte Carlo events, and a parameterised simulation of detector performance, we demonstrate the effectiveness of the method and estimate the most significant residual sources of uncertainty arising from experimental and phenomenological systematics. Our studies indicate that a single experiment precision on the tau lepton universality test of around 1.4% is achievable with a data set of 140 fb$^{-1}$ at $\sqrt{s}$ = 13 TeV. This would improve significantly upon the precision of 2.5% on the four-experiment combined LEP2 measurements. If the central value of the proposed new measurement were equal to the central value of the LEP2 measurement this would yield an observation of BSM physics at a significance level of around 5 $σ$.

hep-ex

Optimisation of variables for studying dilepton transverse momentum distributions at hadron colliders

In future measurements of the dilepton ($Z/γ^*$) transverse momentum, \Qt, at both the Tevatron and LHC, the achievable bin widths and the ultimate precision of the measurements will be limited by experimental resolution rather than by the available event statistics. In a recent paper the variable \at, which corresponds to the component of \Qt\ that is transverse to the dilepton thrust axis, has been studied in this regard. In the region, \Qt\ $<$ 30 GeV, \at\ has been shown to be less susceptible to experimental resolution and efficiency effects than the \Qt. Extending over all \Qt, we now demonstrate that dividing \at\ (or \Qt) by the measured dilepton invariant mass further improves the resolution. In addition, we propose a new variable, \phistarEta, that is determined exclusively from the measured lepton directions; this is even more precisely determined experimentally than the above variables and is similarly sensitive to the \Qt. The greater precision achievable using such variables will enable more stringent tests of QCD and tighter constraints on Monte Carlo event generator tunes.

hep-ex

A Novel Technique for Studying the Z Boson Transverse Momentum Distribution at Hadron Colliders

We present a novel method for studying the shape of the Z boson transverse momentum distribution, Q_T, at hadron colliders in ppbar/pp -> Z/gamma* -> l^+l^-. The Q_T is decomposed into two orthogonal components; one transverse and the other parallel to the di-lepton thrust axis. We show that the transverse component is almost insensitive to the momentum resolution of the individual leptons and is thus more precisely determined on an event-by-event basis than the Q_T. Furthermore, we demonstrate that a measurement of the distribution of this transverse component is substantially less sensitive to the dominant experimental systematics (resolution unfolding and Q_T dependence of event selection efficiencies) reported in previous measurements of the Q_T distribution.

hep-ex