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arXiv · 2209.08078

Report of the Topical Group on Electroweak Precision Physics and Constraining New Physics for Snowmass 2021

Abstract

The precise measurement of physics observables and the test of their consistency within the standard model (SM) are an invaluable approach, complemented by direct searches for new particles, to determine the existence of physics beyond the standard model (BSM). Studies of massive electroweak gauge bosons (W and Z bosons) are a promising target for indirect BSM searches, since the interactions of photons and gluons are strongly constrained by the unbroken gauge symmetries. They can be divided into two categories: (a) Fermion scattering processes mediated by s- or t-channel W/Z bosons, also known as electroweak precision measurements; and (b) multi-boson processes, which include production of two or more vector bosons in fermion-antifermion annihilation, as well as vector boson scattering (VBS) processes. The latter categories can test modifications of gauge-boson self-interactions, and the sensitivity is typically improved with increased collision energy. This report evaluates the achievable precision of a range of future experiments, which depend on the statistics of the collected data sample, the experimental and theoretical systematic uncertainties, and their correlations. In addition it presents a combined interpretation of these results, together with similar studies in the Higgs and top sector, in the Standard Model effective field theory (SMEFT) framework. This framework provides a model-independent prescription to put generic constraints on new physics and to study and combine large sets of experimental observables, assuming that the new physics scales are significantly higher than the EW scale.

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Alberto Belloni, Ayres Freitas, Junping Tian, Juan Alcaraz Maestre Aram Apyan, Bianca Azartash-Namin, Paolo Azzurri, Swagato Banerjee, Jakob Beyer, Saptaparna Bhattacharya, Jorge de Blas, Alain Blondel, Daniel Britzger, Mogens Dam, Yong Du, David d'Enterria, Keisuke Fujii, Christophe Grojean, Jiayin Gu, Tao Han, Michael Hildreth, Adrián Irles, Patrick Janot, Daniel Jeans, Mayuri Kawale, Elham E Khoda, Samuel Lane, Ian Lewis, Zhijun Liang, Jenny List, Zhen Liu, Yang Ma, Victor Miralles, Takahiro Mizuno, Chilufya Mwewa, Meenakshi Narain, Luka Nedic, Mark S. Neubauer, Chaitanya Paranjape, Michael Peskin, Roberto Petti, Marc-André Pleier, Roman Poeschl, Karolos Potamianos, Laura Reina, Jürgen Reuter, Tania Robens, Philipp Roloff, Michael Roney, Manqi Ruan, Richard Ruiz, Alex Schuy, William Shepherd, Daniel Stolarski, John Stupak, Taikan Suehara, Roberto Tenchini, Alessandro Tricoli, Eleni Vryonidou, Marcel Vos, Connor Waits, Graham Wilson, Yongcheng Wu, Keping Xie, Siqi Yang, Tianyi Yang, Keita Yumino, Shuang-Yong Zhou, Junjie Zhu. 2022-09-16. Report of the Topical Group on Electroweak Precision Physics and Constraining New Physics for Snowmass 2021. https://arxiv.org/abs/2209.08078

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