Measuring the W-Boson mass at a hadron collider: a study of phase-space singularity methods
arXiv:1106.0396 · doi:10.1007/JHEP08(2011)023
Abstract
The traditional method to measure the W-Boson mass at a hadron collider (more precisely, its ratio to the Z-mass) utilizes the distributions of three variables in events where the W decays into an electron or a muon: the charged-lepton transverse momentum, the missing transverse energy and the transverse mass of the lepton pair. We study the putative advantages of the additional measurement of a fourth variable: an improved phase-space singularity mass. This variable is statistically optimal, and simultaneously exploits the longitudinal- and transverse-momentum distributions of the charged lepton. Though the process we discuss is one of the simplest realistic ones involving just one unobservable particle, it is fairly non-trivial and constitutes a good "training" example for the scrutiny of phenomena involving invisible objects. Our graphical analysis of the phase space is akin to that of a Dalitz plot, extended to such processes.
11 pages. 9 figures. Version to be published in JHEP
References in corpus (1)
Cited by in corpus (9)
- Singularity Variables for Missing Energy Event Kinematics
- Determination of the -boson mass at hadron colliders
- Singular ways to search for the Higgs boson
- Resolving Combinatorial Ambiguities in Dilepton Event Topologies with Neural Networks
- Finding Higgs bosons heavier than 2 m_W in dileptonic W-boson decays
- Finding Wombling Boundaries in LHC Data with Voronoi and Delaunay Tessellations
- A singular way to search for heavy resonances in missing energy events
- A critical point in the distribution of lepton energies from the decay of a spin-1 resonance
- Could be a singularity variable?