Quantum Computing for High-Energy Physics: State of the Art and Challenges

Author:

Di Meglio Alberto1ORCID,Jansen Karl23,Tavernelli Ivano4,Alexandrou Constantia35ORCID,Arunachalam Srinivasan6,Bauer Christian W.7,Borras Kerstin89ORCID,Carrazza Stefano110ORCID,Crippa Arianna211ORCID,Croft Vincent12ORCID,de Putter Roland6,Delgado Andrea13ORCID,Dunjko Vedran12ORCID,Egger Daniel J.4ORCID,Fernández-Combarro Elias14ORCID,Fuchs Elina11516ORCID,Funcke Lena17ORCID,González-Cuadra Daniel1819ORCID,Grossi Michele1ORCID,Halimeh Jad C.2021ORCID,Holmes Zoë22,Kühn Stefan2ORCID,Lacroix Denis23ORCID,Lewis Randy24ORCID,Lucchesi Donatella125ORCID,Martinez Miriam Lucio2627,Meloni Federico8ORCID,Mezzacapo Antonio6,Montangero Simone125ORCID,Nagano Lento28ORCID,Pascuzzi Vincent R.6ORCID,Radescu Voica29,Ortega Enrique Rico30313032ORCID,Roggero Alessandro3334ORCID,Schuhmacher Julian4ORCID,Seixas Joao353536,Silvi Pietro125ORCID,Spentzouris Panagiotis37ORCID,Tacchino Francesco4ORCID,Temme Kristan6,Terashi Koji28ORCID,Tura Jordi123839ORCID,Tüysüz Cenk211ORCID,Vallecorsa Sofia1ORCID,Wiese Uwe-Jens40,Yoo Shinjae41ORCID,Zhang Jinglei4242ORCID

Affiliation:

1. European Organization for Nuclear Research (CERN)

2. Deutsches Elektronen-Synchrotron DESY

3. The Cyprus Institute

4. IBM Research Europe — Zurich

5. University of Cyprus

6. IBM T.J. Watson Research Center

7. Lawrence Berkeley National Laboratory

8. Deutsches Elektronen-Synchrotron (DESY)

9. RWTH Aachen University

10. Università degli Studi di Milano and INFN Sezione di Milano

11. Humboldt-Universität zu Berlin

12. 〈aQaL〉 Applied Quantum Algorithms – Leiden

13. Oak Ridge National Laboratory

14. University of Oviedo

15. Leibniz University Hannover

16. Physikalisch-Technische Bundesanstalt

17. University of Bonn

18. University of Innsbruck

19. Institute for Quantum Optics and Quantum Information of the Austrian Academy of Sciences

20. Ludwig-Maximilians-Universität München

21. Munich Center for Quantum Science and Technology

22. Ecole Polytechnique Fédérale de Lausanne

23. Paris-Saclay University

24. York University

25. INFN—Sezione di Padova

26. Nikhef—National Institute for Subatomic Physics

27. Maastricht University

28. The University of Tokyo

29. IBM Deutschland Research & Development GmbH

30. University of the Basque Country UPV/EHU

31. Donostia International Physics Center

32. IKERBASQUE

33. University of Trento

34. INFN-TIFPA Trento Institute of Fundamental Physics and Applications

35. Instituto Superior Técnico

36. Laboratory of Physics for Materials and Emergent Technologies (LaPMET)

37. Fermi National Accelerator Laboratory

38. Instituut-Lorentz

39. Universiteit Leiden

40. University of Bern

41. Brookhaven National Laboratory

42. University of Waterloo

Abstract

Quantum computers offer an intriguing path for a paradigmatic change of computing in the natural sciences and beyond, with the potential for achieving a so-called quantum advantage—namely, a significant (in some cases exponential) speedup of numerical simulations. The rapid development of hardware devices with various realizations of qubits enables the execution of small-scale but representative applications on quantum computers. In particular, the high-energy physics community plays a pivotal role in accessing the power of quantum computing, since the field is a driving source for challenging computational problems. This concerns, on the theoretical side, the exploration of models that are very hard or even impossible to address with classical techniques and, on the experimental side, the enormous data challenge of newly emerging experiments, such as the upgrade of the Large Hadron Collider. In this Roadmap paper, led by CERN, DESY, and IBM, we provide the status of high-energy physics quantum computations and give examples of theoretical and experimental target benchmark applications, which can be addressed in the near future. Having in mind hardware with about 100 qubits capable of executing several thousand two-qubit gates, where possible, we also provide resource estimates for the examples given using error-mitigated quantum computing. The ultimate declared goal of this task force is therefore to trigger further research in the high-energy physics community to develop interesting use cases for demonstrations on near-term quantum computers. Published by the American Physical Society 2024

Funder

CERN

Helmholtz Association

Basque Government

Netherlands Organisation for Scientific Research

Deutsche Forschungsgemeinschaft

European Union’s Horizon Europe framework program

Ministry of Science, Research and Culture

European Union

European Union’s Horizon Europe research and innovation program

European Union “NextGenerationEU”/PRTR

Italian National Center for HPC, Big Data and Quantum Computing

ERC StG FINE-TEA-SQUAD

Dutch National Growth Fund

Japan–IBM Quantum Partnership

Publisher

American Physical Society (APS)

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