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author Aarrestad, Thea
van Beekveld, Melissa
Bona, Marcella
Boveia, Antonio
Caron, Sascha
Davies, Joe
de Simone, Andrea
Doglioni, Caterina
Duarte, Javier
Farbin, Amir
Gupta, Honey
Hendriks, Luc
Heinrich, Lukas A.
Howarth, James
Jawahar, Pratik
Jueid, Adil
Lastow, Jessica
Leinweber, Adam
Mamuzic, Judita
Merényi, Erzsébet
Morandini, Alessandro
Moskvitina, Polina
Nellist, Clara
Ngadiuba, Jennifer
Ostdiek, Bryan
Pierini, Maurizio
Ravina, Baptiste
de Austri, Roberto Ruiz
Sekmen, Sezen
Touranakou, Mary
Vaškeviciute, Marija
Vilalta, Ricardo
Vlimant, Jean-Roch
Verheyen, Rob
White, Martin
Wulff, Eric
Wallin, Erik
Wozniak, Kinga A.
Zhang, Zhongyi
author_facet Aarrestad, Thea
van Beekveld, Melissa
Bona, Marcella
Boveia, Antonio
Caron, Sascha
Davies, Joe
de Simone, Andrea
Doglioni, Caterina
Duarte, Javier
Farbin, Amir
Gupta, Honey
Hendriks, Luc
Heinrich, Lukas A.
Howarth, James
Jawahar, Pratik
Jueid, Adil
Lastow, Jessica
Leinweber, Adam
Mamuzic, Judita
Merényi, Erzsébet
Morandini, Alessandro
Moskvitina, Polina
Nellist, Clara
Ngadiuba, Jennifer
Ostdiek, Bryan
Pierini, Maurizio
Ravina, Baptiste
de Austri, Roberto Ruiz
Sekmen, Sezen
Touranakou, Mary
Vaškeviciute, Marija
Vilalta, Ricardo
Vlimant, Jean-Roch
Verheyen, Rob
White, Martin
Wulff, Eric
Wallin, Erik
Wozniak, Kinga A.
Zhang, Zhongyi
author_sort Aarrestad, Thea
collection CERN
description We describe the outcome of a data challenge conducted as part of the Dark Machines Initiative and the Les Houches 2019 workshop on Physics at TeV colliders. The challenged aims at detecting signals of new physics at the LHC using unsupervised machine learning algorithms. First, we propose how an anomaly score could be implemented to define model-independent signal regions in LHC searches. We define and describe a large benchmark dataset, consisting of >1 Billion simulated LHC events corresponding to $10~\rm{fb}^{-1}$ of proton-proton collisions at a center-of-mass energy of 13 TeV. We then review a wide range of anomaly detection and density estimation algorithms, developed in the context of the data challenge, and we measure their performance in a set of realistic analysis environments. We draw a number of useful conclusions that will aid the development of unsupervised new physics searches during the third run of the LHC, and provide our benchmark dataset for future studies at https://www.phenoMLdata.org. Code to reproduce the analysis is provided at https://github.com/bostdiek/DarkMachines-UnsupervisedChallenge.
id cern-2771263
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
record_format invenio
spelling cern-27712632023-09-27T07:52:39Zdoi:10.21468/SciPostPhys.12.1.043http://cds.cern.ch/record/2771263engAarrestad, Theavan Beekveld, MelissaBona, MarcellaBoveia, AntonioCaron, SaschaDavies, Joede Simone, AndreaDoglioni, CaterinaDuarte, JavierFarbin, AmirGupta, HoneyHendriks, LucHeinrich, Lukas A.Howarth, JamesJawahar, PratikJueid, AdilLastow, JessicaLeinweber, AdamMamuzic, JuditaMerényi, ErzsébetMorandini, AlessandroMoskvitina, PolinaNellist, ClaraNgadiuba, JenniferOstdiek, BryanPierini, MaurizioRavina, Baptistede Austri, Roberto RuizSekmen, SezenTouranakou, MaryVaškeviciute, MarijaVilalta, RicardoVlimant, Jean-RochVerheyen, RobWhite, MartinWulff, EricWallin, ErikWozniak, Kinga A.Zhang, ZhongyiThe Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Colliderstat.MLMathematical Physics and Mathematicsphysics.data-anOther Fields of Physicshep-exParticle Physics - Experimenthep-phParticle Physics - PhenomenologyWe describe the outcome of a data challenge conducted as part of the Dark Machines Initiative and the Les Houches 2019 workshop on Physics at TeV colliders. The challenged aims at detecting signals of new physics at the LHC using unsupervised machine learning algorithms. First, we propose how an anomaly score could be implemented to define model-independent signal regions in LHC searches. We define and describe a large benchmark dataset, consisting of >1 Billion simulated LHC events corresponding to $10~\rm{fb}^{-1}$ of proton-proton collisions at a center-of-mass energy of 13 TeV. We then review a wide range of anomaly detection and density estimation algorithms, developed in the context of the data challenge, and we measure their performance in a set of realistic analysis environments. We draw a number of useful conclusions that will aid the development of unsupervised new physics searches during the third run of the LHC, and provide our benchmark dataset for future studies at https://www.phenoMLdata.org. Code to reproduce the analysis is provided at https://github.com/bostdiek/DarkMachines-UnsupervisedChallenge.We describe the outcome of a data challenge conducted as part of the Dark Machines Initiative and the Les Houches 2019 workshop on Physics at TeV colliders. The challenged aims at detecting signals of new physics at the LHC using unsupervised machine learning algorithms. First, we propose how an anomaly score could be implemented to define model-independent signal regions in LHC searches. We define and describe a large benchmark dataset, consisting of >1 Billion simulated LHC events corresponding to $10~\rm{fb}^{-1}$ of proton-proton collisions at a center-of-mass energy of 13 TeV. We then review a wide range of anomaly detection and density estimation algorithms, developed in the context of the data challenge, and we measure their performance in a set of realistic analysis environments. We draw a number of useful conclusions that will aid the development of unsupervised new physics searches during the third run of the LHC, and provide our benchmark dataset for future studies at https://www.phenoMLdata.org. Code to reproduce the analysis is provided at https://github.com/bostdiek/DarkMachines-UnsupervisedChallenge.arXiv:2105.14027FERMILAB-PUB-21-285-CMSoai:cds.cern.ch:27712632021-05-28
spellingShingle stat.ML
Mathematical Physics and Mathematics
physics.data-an
Other Fields of Physics
hep-ex
Particle Physics - Experiment
hep-ph
Particle Physics - Phenomenology
Aarrestad, Thea
van Beekveld, Melissa
Bona, Marcella
Boveia, Antonio
Caron, Sascha
Davies, Joe
de Simone, Andrea
Doglioni, Caterina
Duarte, Javier
Farbin, Amir
Gupta, Honey
Hendriks, Luc
Heinrich, Lukas A.
Howarth, James
Jawahar, Pratik
Jueid, Adil
Lastow, Jessica
Leinweber, Adam
Mamuzic, Judita
Merényi, Erzsébet
Morandini, Alessandro
Moskvitina, Polina
Nellist, Clara
Ngadiuba, Jennifer
Ostdiek, Bryan
Pierini, Maurizio
Ravina, Baptiste
de Austri, Roberto Ruiz
Sekmen, Sezen
Touranakou, Mary
Vaškeviciute, Marija
Vilalta, Ricardo
Vlimant, Jean-Roch
Verheyen, Rob
White, Martin
Wulff, Eric
Wallin, Erik
Wozniak, Kinga A.
Zhang, Zhongyi
The Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Collider
title The Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Collider
title_full The Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Collider
title_fullStr The Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Collider
title_full_unstemmed The Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Collider
title_short The Dark Machines Anomaly Score Challenge: Benchmark Data and Model Independent Event Classification for the Large Hadron Collider
title_sort dark machines anomaly score challenge: benchmark data and model independent event classification for the large hadron collider
topic stat.ML
Mathematical Physics and Mathematics
physics.data-an
Other Fields of Physics
hep-ex
Particle Physics - Experiment
hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.21468/SciPostPhys.12.1.043
http://cds.cern.ch/record/2771263
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