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Abstract

(ProQuest: ... denotes formulae and/or non-USASCII text omitted; see image)

Abstract

We critically examine the classic endpoint method for particle mass determination, focusing on difficult corners of parameter space, where some of the measurements are not independent, while others are adversely affected by the experimental resolution. In such scenarios, mass differences can be measured relatively well, but the overall mass scale remains poorly constrained. Using the example of the standard SUSY decay chain ......, we demonstrate that sensitivity to the remaining mass scale parameter can be recovered by measuring the two-dimensional kinematical boundary in the relevant three-dimensional phase space of invariant masses squared. We develop an algorithm for detecting this boundary, which uses the geometric properties of the Voronoi tessellation of the data, and in particular, the relative standard deviation (RSD) of the volumes of the neighbors for each Voronoi cell in the tessellation. We propose a new observable, ......, which is the average RSD per unit area, calculated over the hypothesized boundary. We show that the location of the ...... maximum correlates very well with the true values of the new particle masses. Our approach represents the natural extension of the one-dimensional kinematic endpoint method to the relevant three dimensions of invariant mass phase space.

Details

Title
Detecting kinematic boundary surfaces in phase space: particle mass measurements in SUSY-like events
Author
Debnath, Dipsikha 1 ; Gainer, James S 2 ; Kilic, Can 3 ; Kim, Doojin 4 ; Matchev, Konstantin T 1 ; Yang, Yuan-pao 3 

 Physics Department, University of Florida, Gainesville, FL, U.S.A. 
 Department of Physics and Astronomy, University of Hawaii, Honolulu, HI, U.S.A. 
 Theory Group, Department of Physics and Texas Cosmology Center, The University of Texas at Austin, Austin, TX, U.S.A. 
 Physics Department, University of Florida, Gainesville, FL, U.S.A.; Theory Division, CERN, Geneva 23, Switzerland 
Pages
1-52
Publication year
2017
Publication date
Jun 2017
Publisher
Springer Nature B.V.
e-ISSN
10298479
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
1912093987
Copyright
Journal of High Energy Physics is a copyright of Springer, 2017.