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Quantum anomaly detection for collider physics
by
Alvi, Sulaiman
, Bauer, Christian W.
, Nachman, Benjamin
in
Algorithms
/ Anomalies
/ Bias
/ Circuits
/ Classical and Quantum Gravitation
/ Datasets
/ Elementary Particles
/ High energy physics
/ Large Hadron Collider
/ Leptons
/ Linear algebra
/ Machine learning
/ Multi-Higgs Models
/ Neural networks
/ New Light Particles
/ Physics
/ Physics and Astronomy
/ PHYSICS OF ELEMENTARY PARTICLES AND FIELDS
/ Quantum computing
/ Quantum Field Theories
/ Quantum Field Theory
/ Quantum Physics
/ Regular - Theoretical Physics
/ Regular Article - Theoretical Physics
/ Relativity Theory
/ Simulation
/ String Theory
2023
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Quantum anomaly detection for collider physics
by
Alvi, Sulaiman
, Bauer, Christian W.
, Nachman, Benjamin
in
Algorithms
/ Anomalies
/ Bias
/ Circuits
/ Classical and Quantum Gravitation
/ Datasets
/ Elementary Particles
/ High energy physics
/ Large Hadron Collider
/ Leptons
/ Linear algebra
/ Machine learning
/ Multi-Higgs Models
/ Neural networks
/ New Light Particles
/ Physics
/ Physics and Astronomy
/ PHYSICS OF ELEMENTARY PARTICLES AND FIELDS
/ Quantum computing
/ Quantum Field Theories
/ Quantum Field Theory
/ Quantum Physics
/ Regular - Theoretical Physics
/ Regular Article - Theoretical Physics
/ Relativity Theory
/ Simulation
/ String Theory
2023
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Do you wish to request the book?
Quantum anomaly detection for collider physics
by
Alvi, Sulaiman
, Bauer, Christian W.
, Nachman, Benjamin
in
Algorithms
/ Anomalies
/ Bias
/ Circuits
/ Classical and Quantum Gravitation
/ Datasets
/ Elementary Particles
/ High energy physics
/ Large Hadron Collider
/ Leptons
/ Linear algebra
/ Machine learning
/ Multi-Higgs Models
/ Neural networks
/ New Light Particles
/ Physics
/ Physics and Astronomy
/ PHYSICS OF ELEMENTARY PARTICLES AND FIELDS
/ Quantum computing
/ Quantum Field Theories
/ Quantum Field Theory
/ Quantum Physics
/ Regular - Theoretical Physics
/ Regular Article - Theoretical Physics
/ Relativity Theory
/ Simulation
/ String Theory
2023
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Journal Article
Quantum anomaly detection for collider physics
2023
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Overview
A
bstract
We explore the use of Quantum Machine Learning (QML) for anomaly detection at the Large Hadron Collider (LHC). In particular, we explore a semi-supervised approach in the four-lepton final state where simulations are reliable enough for a direct background prediction. This is a representative task where classification needs to be performed using small training datasets — a regime that has been suggested for a quantum advantage. We find that Classical Machine Learning (CML) benchmarks outperform standard QML algorithms and are able to automatically identify the presence of anomalous events injected into otherwise background-only datasets.
Publisher
Springer Berlin Heidelberg,Springer Nature B.V,Springer Nature,SpringerOpen
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