
TL;DR
This paper discusses the importance of measuring supersymmetry, its potential discovery at the LHC, and the methods used to determine its parameters and implications for fundamental physics.
Contribution
It introduces the SFitter project for extracting supersymmetry parameters from experimental data and explores the potential for understanding grand unification and gravity.
Findings
Development of methods to extract supersymmetry parameters from collider data
Application of these methods to Higgs and supersymmetry measurements at the LHC
Extrapolation of parameters to the grand unification scale
Abstract
Supersymmetry is an attractive extension of the standard model of particle physics. It associates to every bosonic degree of freedom a fermionic one and vice versa. Supersymmetry unifies the coupling constants of the electromagnetic, weak and strong forces at a high scale and provides a candidate for the elusive dark matter. Supersymmetry could be discovered at the LHC, the proton--proton collider at CERN which has started operations in 2008. The LHC is foreseen to have a center--of--mass energy of 14~TeV, opening up a new mass range to be explored to search for supersymmetric particles with the ATLAS and CMS experiments. The development and production of electronics for these detectors has been a challenge, e.g. for the readout board for the electromagnetic calorimeter. Reconstructing the physics events with the best precision, in particular the reconstruction and identification of…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Dark Matter and Cosmic Phenomena · Computational Physics and Python Applications
