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Title: A theory of quark vs. gluon discrimination

Journal Article · · Journal of High Energy Physics (Online)
 [1]; ORCiD logo [2]
  1. Reed College, Portland, OR (United States). Physics Dept.
  2. Massachusetts Inst. of Technology (MIT), Cambridge, MA (United States). Center for Theoretical Physics; Harvard Univ., Cambridge, MA (United States). Dept. of Physics

Understanding jets initiated by quarks and gluons is of fundamental importance in collider physics. Efficient and robust techniques for quark versus gluon jet discrimination have consequences for new physics searches, precision αs studies, parton distribution function extractions, and many other applications. Numerous machine learning analyses have attacked the problem, demonstrating that good performance can be obtained but generally not providing an understanding for what properties of the jets are responsible for that separation power. In this paper, we provide an extensive and detailed analysis of quark versus gluon discrimination from first-principles theoretical calculations. Working in the strongly-ordered soft and collinear limits, we calculate probability distributions for fixed N-body kinematics within jets with up through three resolved emissions (O(α$$3\atop{s}$$)). This enables explicit calculation of quantities central to machine learning such as the likelihood ratio, the area under the receiver operating characteristic curve, and reducibility factors within a well-defined approximation scheme. Further, we relate the existence of a consistent power counting procedure for discrimination to ideas for operational flavor definitions, and we use this relationship to construct a power counting for quark versus gluon discrimination as an expansion in eCF-CA$$\ll$$1, the exponential of the fundamental and adjoint Casimirs. Our calculations provide insight into the discrimination performance of particle multiplicity and show how observables sensitive to all emissions in a jet are optimal. We compare our predictions to the performance of individual observables and neural networks with parton shower event generators, validating that our predictions describe the features identified by machine learning

Research Organization:
Massachusetts Inst. of Technology (MIT), Cambridge, MA (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
Grant/Contract Number:
SC0011090; SC0012567
OSTI ID:
1802205
Journal Information:
Journal of High Energy Physics (Online), Vol. 2019, Issue 10; ISSN 1029-8479
Publisher:
Springer BerlinCopyright Statement
Country of Publication:
United States
Language:
English

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Cited By (5)

Jet tagging in the Lund plane with graph networks journal March 2021
Interpretability Study on Deep Learning for Jet Physics at the Large Hadron Collider preprint January 2019
Calculating the primary Lund Jet Plane density text January 2020
Equivariant Energy Flow Networks for Jet Tagging text January 2020
Safety of Quark/Gluon Jet Classification preprint January 2021

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