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Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware

Machine learning enjoys widespread success in High Energy Physics (HEP) analyses at LHC. However the ambitious HL-LHC program will require much more computing resources in the next two decades. Quantum computing may offer speed-up for HEP physics analyses at HL-LHC, and can be a new computational pa...

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Autores principales: Wu, Sau Lan, Chan, Jay, Cheng, Alkaid, Guan, Wen, Sun, Shaojun, Wang, Alex, Zhang, Rui, Zhou, Chen, Livny, Miron, Di Meglio, Alberto, Li, Andy, Lykken, Joseph, Spentzouris, Panagiotis, Yen-Chi Chen, Samuel, Yoo, Shinjae, Wei, Tzu-Chieh, Lougovski, Pavel, Padhi, Sanjay, Severini, Simone, Walker, Dewayne
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.22323/1.398.0842
http://cds.cern.ch/record/2827277
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author Wu, Sau Lan
Chan, Jay
Cheng, Alkaid
Guan, Wen
Sun, Shaojun
Wang, Alex
Zhang, Rui
Zhou, Chen
Livny, Miron
Di Meglio, Alberto
Li, Andy
Lykken, Joseph
Spentzouris, Panagiotis
Yen-Chi Chen, Samuel
Yoo, Shinjae
Wei, Tzu-Chieh
Lougovski, Pavel
Padhi, Sanjay
Severini, Simone
Walker, Dewayne
author_facet Wu, Sau Lan
Chan, Jay
Cheng, Alkaid
Guan, Wen
Sun, Shaojun
Wang, Alex
Zhang, Rui
Zhou, Chen
Livny, Miron
Di Meglio, Alberto
Li, Andy
Lykken, Joseph
Spentzouris, Panagiotis
Yen-Chi Chen, Samuel
Yoo, Shinjae
Wei, Tzu-Chieh
Lougovski, Pavel
Padhi, Sanjay
Severini, Simone
Walker, Dewayne
author_sort Wu, Sau Lan
collection CERN
description Machine learning enjoys widespread success in High Energy Physics (HEP) analyses at LHC. However the ambitious HL-LHC program will require much more computing resources in the next two decades. Quantum computing may offer speed-up for HEP physics analyses at HL-LHC, and can be a new computational paradigm for big data analyses in High Energy Physics. We have successfully employed three methods (1) Variational Quantum Classifier (VQC) method, (2) Quantum Support Vector Machine Kernel (QSVM-kernel) method and (3) Quantum Neural Network (QNN) method for two LHC flagship analyses: ttH (Higgs production in association with two top quarks) and H->mumu (Higgs decay to two muons, the second generation fermions). We shall address the progressive improvements in performance from method (1) to method (3). We will present our experiences and results of a study on LHC High Energy Physics data analyses with IBM Quantum Simulator and Quantum Hardware (using IBM Qiskit framework), Google Quantum Simulator (using Google Cirq framework), and Amazon Quantum Simulator (using Amazon Braket cloud service). The work is in the context of a Qubit platform (a gate-model quantum computer). Taking into account the present limitation of hardware access, different quantum machine learning methods are studied on simulators and the results are compared with classical machine learning methods (BDT, classical Support Vector Machine and classical Neural Network). Furthermore, we do apply quantum machine learning on IBM quantum hardware to compare performance between quantum simulator and quantum hardware. The work is performed by an international and interdisciplinary collaboration with the Department of Physics and Department of Computer Sciences of University of Wisconsin, CERN Quantum Technology Initiative, IBM Research Zurich, IBM T.J. Watson Research Center, Fermilab Quantum Institute, BNL Computational Science Initiative, State University of New York at Stony Brook, and Quantum Computing and AI Research of Amazon Web Services. This work pioneers a close collaboration of academic institutions with industrial corporations in the High Energy Physics analyses effort. Though the size of event samples in future HL-LHC physics and the limited number of qubits pose some challenges to the Quantum Machine learning studies for High Energy Physics, more advanced quantum computers with larger number of qubits, reduced noise and improved running time (as envisioned by IBM and Google) may outperform classical machine learning in both classification power and in speed. Although the era of efficient quantum computing may still be years away, we have made promising progress and obtained preliminary results in applying quantum machine learning to High Energy Physics. A PROOF OF PRINCIPLE.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
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spelling cern-28272772022-09-16T21:13:08Zdoi:10.22323/1.398.0842http://cds.cern.ch/record/2827277engWu, Sau LanChan, JayCheng, AlkaidGuan, WenSun, ShaojunWang, AlexZhang, RuiZhou, ChenLivny, MironDi Meglio, AlbertoLi, AndyLykken, JosephSpentzouris, PanagiotisYen-Chi Chen, SamuelYoo, ShinjaeWei, Tzu-ChiehLougovski, PavelPadhi, SanjaySeverini, SimoneWalker, DewayneApplication of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer HardwareDetectors and Experimental TechniquesQuantum TechnologyMachine learning enjoys widespread success in High Energy Physics (HEP) analyses at LHC. However the ambitious HL-LHC program will require much more computing resources in the next two decades. Quantum computing may offer speed-up for HEP physics analyses at HL-LHC, and can be a new computational paradigm for big data analyses in High Energy Physics. We have successfully employed three methods (1) Variational Quantum Classifier (VQC) method, (2) Quantum Support Vector Machine Kernel (QSVM-kernel) method and (3) Quantum Neural Network (QNN) method for two LHC flagship analyses: ttH (Higgs production in association with two top quarks) and H->mumu (Higgs decay to two muons, the second generation fermions). We shall address the progressive improvements in performance from method (1) to method (3). We will present our experiences and results of a study on LHC High Energy Physics data analyses with IBM Quantum Simulator and Quantum Hardware (using IBM Qiskit framework), Google Quantum Simulator (using Google Cirq framework), and Amazon Quantum Simulator (using Amazon Braket cloud service). The work is in the context of a Qubit platform (a gate-model quantum computer). Taking into account the present limitation of hardware access, different quantum machine learning methods are studied on simulators and the results are compared with classical machine learning methods (BDT, classical Support Vector Machine and classical Neural Network). Furthermore, we do apply quantum machine learning on IBM quantum hardware to compare performance between quantum simulator and quantum hardware. The work is performed by an international and interdisciplinary collaboration with the Department of Physics and Department of Computer Sciences of University of Wisconsin, CERN Quantum Technology Initiative, IBM Research Zurich, IBM T.J. Watson Research Center, Fermilab Quantum Institute, BNL Computational Science Initiative, State University of New York at Stony Brook, and Quantum Computing and AI Research of Amazon Web Services. This work pioneers a close collaboration of academic institutions with industrial corporations in the High Energy Physics analyses effort. Though the size of event samples in future HL-LHC physics and the limited number of qubits pose some challenges to the Quantum Machine learning studies for High Energy Physics, more advanced quantum computers with larger number of qubits, reduced noise and improved running time (as envisioned by IBM and Google) may outperform classical machine learning in both classification power and in speed. Although the era of efficient quantum computing may still be years away, we have made promising progress and obtained preliminary results in applying quantum machine learning to High Energy Physics. A PROOF OF PRINCIPLE.FERMILAB-CONF-22-331-DI-QISoai:cds.cern.ch:28272772022
spellingShingle Detectors and Experimental Techniques
Quantum Technology
Wu, Sau Lan
Chan, Jay
Cheng, Alkaid
Guan, Wen
Sun, Shaojun
Wang, Alex
Zhang, Rui
Zhou, Chen
Livny, Miron
Di Meglio, Alberto
Li, Andy
Lykken, Joseph
Spentzouris, Panagiotis
Yen-Chi Chen, Samuel
Yoo, Shinjae
Wei, Tzu-Chieh
Lougovski, Pavel
Padhi, Sanjay
Severini, Simone
Walker, Dewayne
Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware
title Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware
title_full Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware
title_fullStr Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware
title_full_unstemmed Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware
title_short Application of Quantum Machine Learning to High Energy Physics Analysis at LHC Using Quantum Computer Simulators and Quantum Computer Hardware
title_sort application of quantum machine learning to high energy physics analysis at lhc using quantum computer simulators and quantum computer hardware
topic Detectors and Experimental Techniques
Quantum Technology
url https://dx.doi.org/10.22323/1.398.0842
http://cds.cern.ch/record/2827277
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