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M. P. Fewell

Publications and source records attributed to M. P. Fewell.

3 recordsLinked to original sources

Multi-Particle Invariant Mass -- Standard Expressions and Corrections to Order $(m/E)^4$

In collider-based particle physics, $invariant\ mass$ refers to the magnitude of the total-momentum 4-vector of a system of particles. An expression for the invariant mass of a 2-particle system is well known; it assumes that both the total energy $E$ and the transverse momentum $p_\mathrm{T}$ of each particle in the system greatly exceed its mass $m$. This note explores these assumptions by computing correction terms in powers of $m/E$ up to order $(m/E)^4$. The assumptions are found to be robust: not only is the leading correction quadratic in $m/E$, but also cancellations reduce its coefficient and that of the next-to-leading correction, which is of order $(m/E)^4$. Three- and four-particle systems are also treated and the generalisation to larger numbers of particles indicated. The zeroth-order expressions for these multi-particle systems are remarkably simple; they deserve to be better known.

hep-ph

Uncertainties in ROC (Receiver Operating Characteristic) Curves Derived from Counting Data

The ROC (receiver operating characteristic) curve is a widely used device for assessing decision-making systems. It seems surprising, in view of its history dating back to World War Two, that the assignment of uncertainties to a ROC curve is apparently not settled. This note returns to the question, focusing on the application of ROC curves to the analysis of data from counting experiments and taking a practical operational approach to the concept of uncertainty.

physics.data-an

Intrinsic Angular Momentum of the B Mesons: Proposal for a Model-Independent Measurement

The intrinsic angular momentum ("spin") of the B mesons has not so far been measured, notwithstanding the large amount of experimental attention that these particles have received in the four decades since the first of them was discovered. This paper draws attention to the applicability of a long-standing method for spin measurement from nuclear spectroscopy, concluding that known decay data point to the in-principle feasibility of a model-independent measurement of the spin of the B$^+$ meson. For the B$^0$ and B$^0_\mathrm{s}$ mesons, known decay chains allow the Standard-Model prediction to be tested, but are insufficient for a fully model-independent spin measurement. Suitable decay chains are not yet known for the B$^+_\mathrm{c}$ meson. The Standard Model predicts all B mesons to have spin zero. If this turns out not to be so, then the possibility of parity measurement opens up, using a related method.

hep-ex