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5  |Vus| measurement

The CKM coefficient |Vus| can be measured in several ways from the comparison of tau partial widths to strange and non-strange final states.

5.1  Inclusive tau partial width to strange

The tau hadronic partial width is the sum of the tau partial width to strange and to non-strange hadronic final states, Γhad = Γs + ΓVA . Dividing by the partial width to electron, Γe, we obtain partial width ratios (which are equal to the respective branching fraction ratios) for which Rhad = Rs + RVA . In terms of such ratios, |Vus| is measured as

     
  |Vus|
Rs/


RVA
|Vud| 2
 −  δ Rtheory


 ,
            (1)

where δ Rtheory can be determined in the context of low energy QCD theory, partly relying on experimental low energy scattering data. We use δ Rtheory = 0.240 ± 0.032  [70], which induces a systematic error on |Vus| that lies between two more recent estimates [71, 83].

In the following, we use the universality improved B euni (see Section 4) to compute the R ratios. The most direct experimental determination of Rs and RVA = RhadRs come from the tau inclusive branching fractions to hadronic and strange hadronic states, B had and B s . However often the total hadronic branching fraction has been replaced by the indirect but more precise expression B had uni = 1 − B eB µ (or similar expressions based on B euni), using unitarity, see for example the 2009 HFAG report [31]. We depart from this choice here, and we use the most direct determination of Rhad, for two reasons: first there is no significant statistical gain in the final errors, because of statistical correlations in the Rhad expression (1−B eB µ)/B euniv, and second the indirect determination of RVA = Rhad uniRs would absorb the effect of possible unobserved hadronic states entirely in RVA, while they could also be strange final states.

With the above choices, using |Vud| = 0.97425 ± 0.00022  [73], using HFAG values of this report, including the above-mentioned B euniv, B s = (2.872 ± 0.050)% (see also Table 9), B VA = (61.85 ± 0.11)%) and the PDG 2011 averages, we obtain |Vus| τ s = 0.2172 ± 0.0022 , which is 3.4 σ lower than the unitarity CKM prediction |Vus| uni = 0.2255 ± 0.0010 , from (|Vus| uni)2 = 1 − |Vud| 2. The |Vus| τ s uncertainty includes a systematic error contribution of 0.0010 from the theory uncertainty on δ Rtheory,

If we use the alternative above mentioned definitions of B had, the mismatch remains 3.4σ. Using a unitarity-constrained tau branching fraction fit, the mismatch remains 3.4σ. The 3.4 σ discrepancy is close to the unconstrained fit result of the 2009 HFAG report, 3.6σ [31], and also to the 3.3σ from the HFAG-Tau 2011 intermediate document [46], based on a unitarity-constrained fit.


Table 9: HFAG Winter 2012 Tau branching fractions to strange final states.
Branching fractionHFAG Winter 2012 fit
Γ10 = K ντ
(0.6955 ± 0.0096) · 10−2
Γ16 = K π0 ντ
(0.4322 ± 0.0149) · 10−2
Γ23 = K 2π0 ντ (ex. K0)
(0.0630 ± 0.0222) · 10−2
Γ28 = K 3π0 ντ (ex. K0,η)
(0.0419 ± 0.0218) · 10−2
Γ35 = π K0 ντ
(0.8206 ± 0.0182) · 10−2
Γ40 = π K0 π0 ντ
(0.3649 ± 0.0108) · 10−2
Γ44 = π K0 π0 π0 ντ
(0.0269 ± 0.0230) · 10−2
Γ53 = K0 h h h+ ντ
(0.0222 ± 0.0202) · 10−2
Γ128 = K η ντ
(0.0153 ± 0.0008) · 10−2
Γ130 = K π0 η ντ
(0.0048 ± 0.0012) · 10−2
Γ132 = π K0 η ντ
(0.0094 ± 0.0015) · 10−2
Γ151 = K ω ντ
(0.0410 ± 0.0092) · 10−2
Γ801 = K φ ντ(φ → KK)
(0.0037 ± 0.0014) · 10−2
Γ802 = K π π+ ντ (ex. K0,ω)
(0.2923 ± 0.0068) · 10−2
Γ803 = K π π+ π0 ντ (ex. K0,ω,η)
(0.0411 ± 0.0143) · 10−2
Γ110 = Xs ντ
(2.8746 ± 0.0498) · 10−2

5.2  |Vus| from B (τ → Kν) / B (τ → πν) and from B (τ → Kν)

We use the ratio of branching fractions BK ντ )/B → π ντ ) = 0.0643 ± 0.0009 to measure |Vus| from the equation

     
B → K ντ )
B → π ντ )
=
fK2 |Vus| 2
fπ2 |Vud| 2
 

1 − mK2/mτ2 
2

1 −  mπ2/mτ2 
2
rLD → Kντ)
rLD → πντ)
 .
         

In this ratio, the short-distance radiative corrections cancel. The term rLD(p) = 1 + δLD(p) corresponds to the long-distance electroweak radiative correction factor for the process p. Following Ref. [45], the ratio of radiative correction factors is estimated as rLDKπ = rLDKν/K → µν) / rLD → πν/π → µν) · rLD(K → µν)/rLD → µν), where the first ratio is [1+ (0.90 ± 0.22)%]/[1+ (0.16 ± 0.14)%] [65] and the second ratio is (0.9930 ± 0.0035)% [85], hence assuming independent errors rLDKπ = 1.0003 ± 0.0044 . The ratio fK/fπ is estimated in lattice QCD to be 1.1936 ± 0.0053 [80]. We measure |Vus| τ K = 0.2229 ± 0.0020 , 1.2 σ below the CKM unitarity prediction.

We use the branching fraction BK ντ ) to measure |Vus| from the equation

     
  B → Kντ) =
GF2 fK2 |Vus| 2 mτ3 ττ
16πℏ
 


1 − 
mK2
mτ2
 


2



 
 SEW ,
          

where fK = 156.1 ± 1.1  MeV  [80] is the kaon decay constant estimated with lattice QCD, and SEW = 1.0201 ± 0.0003  [68] accounts for the radiative corrections. We obtain |Vus| τ K = 0.2214 ± 0.0022 , wich is 1.7 σ below the CKM unitarity prediction. CODATA 2006 results [90] and PDG 2011 have been used for the physics constants.

5.3  |Vus| from tau summary


PNG format EPS format
Vus summary plot
Figure 1: |Vus| averages of this document compared with the FlaviaNet results [27].

We summarize the |Vus| results reporting the values, the discrepancy with respect to the |Vus| determination from CKM unitarity, and an illustration of the measurement method:

     
 |Vus| uni     = 0.2255 ± 0.0010              
 
from  
1 − |Vud| 2
   (CKM unitarity)
 , 
     
 |Vus| τ s     = 0.2172 ± 0.0022        −3.4 σ      from  Γ(τ → Xs ντ) ,      
 |Vus| τ K     = 0.2229 ± 0.0020        −1.2 σ      from  Γ(τ → K ντ )/Γ(τ → π ντ ) ,       
 |Vus| τ K     = 0.2214 ± 0.0022        −1.7 σ      from  Γ(τ → K ντ ) .      

Thanks to the improved lattice QCD determination of fK [80], the uncertainty on |Vus| τ K has been significantly reduced with respect to the previous HFAG report. Averaging the three above |Vus| determinations we obtain:

     
  |Vus| τ     = 0.2203 ± 0.0015      −2.9 σ        average of 3 |Vus| tau measurements.       

We could not find a published estimate of the correlation of the uncertainties on fK and fK/fπ, but even if we assume ± 100% correlation, the uncertainty on |Vus| τ does not change more than about ± 5%. Figure 1 summarizes the |Vus| results.


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