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  3. Dijet resonance search with weak supervision using \sqrts=13 TeV pp collisions in the ATLAS detector
 

Dijet resonance search with weak supervision using \sqrts=13 TeV pp collisions in the ATLAS detector

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BORIS DOI
10.48350/155565
Date of Publication
2020
Publication Type
Article
Division/Institute

Physikalisches Instit...

Albert Einstein Cente...

Physikalisches Instit...

Contributor
Franconi, Laura
Albert Einstein Center for Fundamental Physics (AEC)
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Haug, Sigveorcid-logo
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Weber, Michaelorcid-logo
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Anders, John Kenneth
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Albert Einstein Center for Fundamental Physics (AEC)
Ilg, Armin
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Physikalisches Institut
Beck, Hans Peter
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Ereditato, Antonio
Albert Einstein Center for Fundamental Physics (AEC)
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Lehmann, Niklaus
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Miucci, Antonio
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Weston, Thomas Daniel
Physikalisches Institut
Physikalisches Institut, Laboratorium für Hochenergiephysik (LHEP)
Albert Einstein Center for Fundamental Physics (AEC)
Subject(s)

500 - Science::530 - ...

Series
Physical review letters
ISSN or ISBN (if monograph)
0031-9007
Publisher
American Physical Society
Language
en
Publisher DOI
10.1103/PhysRevLett.125.131801
Description
This Letter describes a search for narrowly resonant new physics using a machine-learning anomaly detection procedure that does not rely on signal simulations for developing the analysis selection. Weakly supervised learning is used to train classifiers directly on data to enhance potential signals. The targeted topology is dijet events and the features used for machine learning are the masses of the two jets. The resulting analysis is essentially a three-dimensional search A→BC, for mA∼O(TeV), mB,mC∼O(100  GeV) and B, C are reconstructed as large-radius jets, without paying a penalty associated with a large trials factor in the scan of the masses of the two jets. The full run 2 √s=13  TeV pp collision dataset of 139  fb−1 recorded by the ATLAS detector at the Large Hadron Collider is used for the search. There is no significant evidence of a localized excess in the dijet invariant mass spectrum between 1.8 and 8.2 TeV. Cross-section limits for narrow-width A, B, and C particles vary with mA, mB, and mC. For example, when mA=3  TeV and mB≳200  GeV, a production cross section between 1 and 5 fb is excluded at 95% confidence level, depending on mC. For certain masses, these limits are up to 10 times more sensitive than those obtained by the inclusive dijet search. These results are complementary to the dedicated searches for the case that B and C are standard model bosons.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/56629
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