SMEFTs living on the edge: determining the UV theories from positivity and extremality
Cen Zhang

TL;DR
This paper explores how positivity bounds and extremality in SMEFT can help uniquely identify UV theories from IR measurements, especially at the dimension-8 level, by reducing degeneracies in the operator coefficient space.
Contribution
It demonstrates that positivity bounds and geometric extremality concepts significantly constrain UV theories, enabling their reconstruction from SMEFT dimension-8 coefficients.
Findings
Positivity bounds limit degeneracies in SMEFT coefficients.
Extremal rays and faces of the positive cone relate to unique UV properties.
Dimension-8 operators contain substantial information about UV physics.
Abstract
We study the "inverse problem" in the context of the Standard Model Effective Field Theory (SMEFT): how and to what extend can one reconstruct the UV theory, given the measured values of the operator coefficients in the IR? The main obstacle of this problem is the degeneracies in the space of coefficients: a given SMEFT truncated at a finite dimension can be mapped to infinitely many UV theories. We discuss these degeneracies at the dimension-8 level, and show that positivity bounds play a crucial role in the inverse problem. In particular, the degeneracies either vanish or become significantly limited for SMEFTs that live on or close to the positivity bounds. The UV particles of these SMEFTs, and their properties such as spin, charge, other quantum numbers, and interactions with the SM particles, can often be uniquely determined, assuming dimension-8 coefficients are measured. The…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · Black Holes and Theoretical Physics · Noncommutative and Quantum Gravity Theories
