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Jack Benton

Publications and source records attributed to Jack Benton.

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Amplitude analysis of $D^{0} \rightarrow π^{+} π^{-} π^{+} π^{-}$ decays using CLEO-c data

The resonant substructure of the decay $D^{0} \rightarrow π^{+} π^{-} π^{+} π^{-}$ is studied by performing a full five-dimensional amplitude analysis. Preliminary results based on data collected by the CLEO-c detector are presented. This is the largest dataset of $D^{0} \rightarrow π^{+} π^{-} π^{+} π^{-}$ decays analysed in this way to-date. The two most significant contributions are $D^{0} \rightarrow a_{1}(1260)^{+} π^{-}$ and $D^{0} \rightarrow ρ(770)^{0}ρ(770)^{0}$. The line shape, mass and width of the $a_{1}(1260)$ resonance are determined, and model-independent studies of the line shapes of several resonant contributions are preformed.

hep-ex

Amplitude Analyses of $D^0 \to {π^+π^-π^+π^-}$ and $D^0 \to {K^+K^-π^+π^-}$ Decays

The resonant substructure of $D^0 \to π^+π^-π^+π^-$ decays is studied using data collected by the CLEO-c detector. An amplitude analysis is performed in order to disentangle the various intermediate state contributions. To limit the model complexity a data driven regularization procedure is applied. The prominent contributions are the decay modes $D^0\to a_1(1260)^+π^-$, $D^0\to σf_0(1370)$ and $D^0 \to ρ(770)^0 ρ(770)^0$. The broad resonances $a_1(1260)^+$, $π(1300)^+$ and $a_1(1640)^+$ are studied in detail, including quasi-model-independent parametrizations of their lineshapes. The mass and width of the $a_1(1260)^+$ meson are determined to be $m_{a_1(1260)^+}=[1225\pm9\text{(stat)}\pm17\text{(syst)}\pm10\text{(model)}]\text{MeV}/c^2$ and $Γ_{a_1(1260)^+}=[430\pm24\text{(stat)}\pm25 \text{(syst)}\pm18\text{(model)}]\text{MeV}$. The amplitude model of $D^0\to K^+K^-π^+π^-$ decays obtained from CLEO II.V, CLEO III, and CLEO-c data is revisited with improved lineshape parametrizations. The largest components are the decay modes $D^0\toϕ(1020)ρ(770)^0$, $D^0 \to K_1(1270)^+ K^-$ and $D^0 \to K(1400)^+ K^-$. The fractional $CP$-even content of the decay $D^0\to π^+π^-π^+π^-$ is calculated from the amplitude model to be $F_+^{4π}=[72.9\pm0.9\text{(stat)}\pm1.5\text{(syst)}\pm1.0\text{(model)}]\%$, consistent with that obtained from a previous model-independent measurement. For $D^0 \to K^+K^-π^+π^-$ decays, the $CP$-even fraction is measured for the first time and found to be $F_+^{KKππ}=[75.3\pm1.8\text{(stat)}\pm3.3\text{(syst)}\pm3.5\text{(model)}]\%$. The global decay rate asymmetries between $D^0$ and $\overline{D}^0$ decays are measured to be $A^{4π}_{CP}=[+0.54\pm1.04\text{(stat)}\pm0.51\text{(syst)}]\%$ and $A^{KKππ}_{CP}=[+1.84\pm1.74\text{(stat)}\pm0.30\text{(syst)}]\%$.

hep-ex

Finding an Amplitude Model for $D^0 \to π^- π^+ π^+ π^-$ using CLEO-c Data

Amplitude analyses of four body $D$ decays are of significant interest for multiple reasons, including their potential contribution to CP violation studies in both $B$ and $D$ decays. The resonant substructure of a four body decay has many possible components and combinations. Here, a genetic algorithm for the optimisation of such amplitude models is described. The application to an amplitude analysis of the decay mode $D^0 \to π^- π^+ π^+ π^-$ using CLEO-c data is discussed and the performance of the algorithm is verified on simulated data, showing convergence to the original model.

hep-ex