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An empirical model of the long-distance contributions to bar{B}⁰ rightarrow bar{K}^(*0)μ⁺μ⁻ transitions

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arxiv 1709.03921 v3 pith:BIUM6DSP submitted 2017-09-12 hep-ph hep-ex

An empirical model of the long-distance contributions to $\bar{B}^{0} \rightarrow \bar{K}^{*0}\mu^{+}\mu^{-}$ transitions

classification hep-ph hep-ex
keywords effectshadronicmodelpresentedrightarrowcontributionsempiricalmethod
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

A method for analysing the hadronic resonance contributions in $\bar{B}^{0} \rightarrow \bar{K}^{*0}\mu^{+}\mu^{-}$ decays is presented. This method uses an empirical model that relies on measurements of the branching fractions and polarisation amplitudes of final states involving $J^{PC}=1^{--}$ resonances, relative to the short-distance component, across the full dimuon mass spectrum of $\bar{B}^{0} \rightarrow \bar{K}^{*0}\mu^{+}\mu^{-}$ transitions. The model is in good agreement with existing calculations of hadronic non-local effects. The effect of this contribution to the angular observables is presented and it is demonstrated how the narrow resonances in the $q^{2}$ spectrum provide a dramatic enhancement to $CP$-violating effects in the short-distance amplitude. Finally, a study of the hadronic resonance effects on lepton universality ratios, $R_{K^{(*)}}$, in the presence of new physics is presented.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Disentangling short- vs. long-distance dynamics in $B\to K^{*}\mu^+\mu^-$

    hep-ph 2026-07 conditional novelty 5.0

    Dispersive resonance modeling of non-local effects in B o K*μ+μ- reduces the C9 anomaly to ≤2σ while yielding precise postdictions for S7,8,9.

  2. $C\!P$ violation analysis of local and nonlocal amplitudes in the $\overline{B}^0 \to \overline{K}^{*0}\mu^+\mu^-$ decay

    hep-ex 2026-05 unverdicted novelty 4.0

    LHCb measures CP-violating Wilson coefficients in B0 -> K*0 mu+ mu- with higher precision than before and finds results consistent with the Standard Model.