Simplified models for a first characterization of new physics at the LHC

Johan Alwall, Philip C. Schuster, and Natalia Toro
Phys. Rev. D 79, 075020 – Published 24 April 2009

Abstract

Low-energy supersymmetry (SUSY) and several other theories that address the hierarchy problem predict pair-production at the LHC of particles with standard model quantum numbers that decay to jets, missing energy, and possibly leptons. If an excess of such events is seen in LHC data, a theoretical framework in which to describe it will be essential to constraining the structure of the new physics. We propose a basis of four deliberately simplified models, each specified by only 2–3 masses and 4–5 branching ratios, for use in a first characterization of data. Fits of these simplified models to the data furnish a quantitative presentation of the jet structure, electroweak decays, and heavy-flavor content of the data, independent of detector effects. These fits, together with plots comparing their predictions to distributions in data, can be used as targets for describing the data within any full theoretical model.

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  • Received 28 October 2008

DOI:https://doi.org/10.1103/PhysRevD.79.075020

©2009 American Physical Society

Authors & Affiliations

Johan Alwall* and Philip C. Schuster

  • SLAC Theory Group, 2575 Sand Hill Rd, Menlo Park, California 94025, USA

Natalia Toro

  • Stanford Institute for Theoretical Physics, Stanford University 382 Via Pueblo Mall, Stanford, California 94305-4060, USA

  • *alwall@slac.stanford.edu
  • schuster@slac.stanford.edu
  • ntoro@stanford.edu

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Issue

Vol. 79, Iss. 7 — 1 April 2009

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