Rescaling mechanism and effective symmetry from the ideal cancellation of the $S$ parameter in custodial models
Donatello Dolce

TL;DR
This paper analyzes how ideal cancellation between oblique and direct custodial corrections can render electroweak physics insensitive to new physics, revealing an effective symmetry that redefines the electroweak scale.
Contribution
It provides a model-independent framework showing how custodial corrections can cancel, leading to an effective symmetry and redefinition of the electroweak scale.
Findings
Ideal cancellation eliminates all custodial corrections in the gauge sector.
Reinterpretation of the standard model with custodial corrections as an effective symmetry.
The effective gauge structure induced by new physics explains the origin of the symmetry.
Abstract
We present a model independent analysis of custodial corrections to the parameter. The negative contributions coming from direct corrections, i.e. the corrections associated to effects of new physics in the fermionic sector, can be used to eliminate unwanted positive oblique contributions to . By means of such an ideal cancellation among oblique and direct corrections the electroweak physics can be made insensitive to custodial new physics. The Lagrangian analysis of the ideal cancellation reveals a possible sizable redefinition of the effective electroweak energy scale with respect to models with only oblique corrections. We then infer from general principles the full expression for the effective custodial operator responsible in the gauge sector for the contribution to . We show that the ideal cancellation exactly eliminates all the custodial corrections, including those in…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Cosmology and Gravitation Theories · Black Holes and Theoretical Physics
