$|V_{us}|$ from $K_{\ell 3}$ decay and four-flavor lattice QCD
A. Bazavov, C. Bernard, C. DeTar, Daping Du, A. X. El-Khadra, E. D., Freeland, E. G\'amiz, Steven Gottlieb, U. M. Heller, J. Komijani, A. S., Kronfeld, J. Laiho, P. B. Mackenzie, E. T. Neil, T. Primer, J. N. Simone, R., Sugar, D. Toussaint, R. S. Van de Water, Ran Zhou

TL;DR
This paper presents the most precise lattice QCD calculation of the $K o\pi ext{lepton} u$ vector form factor at zero momentum transfer, leading to a new determination of $|V_{us}|$ that tests CKM unitarity.
Contribution
First lattice QCD calculation including dominant finite-volume effects for $f_+^{K^0\pi^-}(0)$, providing a precise $|V_{us}|$ value and analyzing CKM unitarity tensions.
Findings
$f_+^{K^0\pi^-}(0)=0.9696(15)_ ext{stat}(12)_ ext{syst}$
$|V_{us}|=0.22333(44)_{f_+(0)}(42)_ ext{exp}$
Tension at 2-2.6$\sigma$ with CKM unitarity and leptonic decay determinations.
Abstract
Using HISQ MILC ensembles with five different values of the lattice spacing, including four ensembles with physical quark masses, we have performed the most precise computation to date of the vector form factor at zero momentum transfer, . This is the first calculation that includes the dominant finite-volume effects, as calculated in chiral perturbation theory at next-to-leading order. Our result for the form factor provides a direct determination of the Cabibbo-Kobayashi-Maskawa matrix element , with a theory error that is, for the first time, at the same level as the experimental error. The uncertainty of the semileptonic determination is now similar to that from leptonic decays and the ratio , which uses as input. Our…
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