Closed-loop calculations of electronic structure on a quantum processor and a classical supercomputer at full scale

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Shirakawa, Tomonori, Robledo-Moreno, Javier, Itoko, Toshinari, Tripathi, Vinay, Ueda, Kento, Kawashima, Yukio, Broers, Lukas, Kirby, William, Pathak, Himadri, Paik, Hanhee, Tsuji, Miwako, Kodama, Yuetsu, Sato, Mitsuhisa, Evangelinos, Constantinos, Seelam, Seetharami, Walkup, Robert, Yunoki, Seiji, Motta, Mario, Jurcevic, Petar, Horii, Hiroshi, Mezzacapo, Antonio
Format: Preprint
Veröffentlicht: 2025
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866915589637799936
author Shirakawa, Tomonori
Robledo-Moreno, Javier
Itoko, Toshinari
Tripathi, Vinay
Ueda, Kento
Kawashima, Yukio
Broers, Lukas
Kirby, William
Pathak, Himadri
Paik, Hanhee
Tsuji, Miwako
Kodama, Yuetsu
Sato, Mitsuhisa
Evangelinos, Constantinos
Seelam, Seetharami
Walkup, Robert
Yunoki, Seiji
Motta, Mario
Jurcevic, Petar
Horii, Hiroshi
Mezzacapo, Antonio
author_facet Shirakawa, Tomonori
Robledo-Moreno, Javier
Itoko, Toshinari
Tripathi, Vinay
Ueda, Kento
Kawashima, Yukio
Broers, Lukas
Kirby, William
Pathak, Himadri
Paik, Hanhee
Tsuji, Miwako
Kodama, Yuetsu
Sato, Mitsuhisa
Evangelinos, Constantinos
Seelam, Seetharami
Walkup, Robert
Yunoki, Seiji
Motta, Mario
Jurcevic, Petar
Horii, Hiroshi
Mezzacapo, Antonio
contents Quantum computers must operate in concert with classical computers to deliver on the promise of quantum advantage for practical problems. To achieve that, it is important to understand how quantum and classical computing can interact together, and how one can characterize the scalability and efficiency of hybrid quantum-classical workflows. So far, early experiments with quantum-centric supercomputing workflows have been limited in scale and complexity. Here, we use a Heron quantum processor deployed on premises with the entire supercomputer Fugaku to perform the largest computation of electronic structure involving quantum and classical high-performance computing. We design a closed-loop workflow between the quantum processors and 152,064 classical nodes of Fugaku, to approximate the electronic structure of chemistry models beyond the reach of exact diagonalization, with accuracy comparable to some all-classical approximation methods. Our work pushes the limits of the integration of quantum and classical high-performance computing, showcasing computational resource orchestration at the largest scale possible for current classical supercomputers.
format Preprint
id arxiv_https___arxiv_org_abs_2511_00224
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Closed-loop calculations of electronic structure on a quantum processor and a classical supercomputer at full scale
Shirakawa, Tomonori
Robledo-Moreno, Javier
Itoko, Toshinari
Tripathi, Vinay
Ueda, Kento
Kawashima, Yukio
Broers, Lukas
Kirby, William
Pathak, Himadri
Paik, Hanhee
Tsuji, Miwako
Kodama, Yuetsu
Sato, Mitsuhisa
Evangelinos, Constantinos
Seelam, Seetharami
Walkup, Robert
Yunoki, Seiji
Motta, Mario
Jurcevic, Petar
Horii, Hiroshi
Mezzacapo, Antonio
Quantum Physics
Strongly Correlated Electrons
Computational Physics
Quantum computers must operate in concert with classical computers to deliver on the promise of quantum advantage for practical problems. To achieve that, it is important to understand how quantum and classical computing can interact together, and how one can characterize the scalability and efficiency of hybrid quantum-classical workflows. So far, early experiments with quantum-centric supercomputing workflows have been limited in scale and complexity. Here, we use a Heron quantum processor deployed on premises with the entire supercomputer Fugaku to perform the largest computation of electronic structure involving quantum and classical high-performance computing. We design a closed-loop workflow between the quantum processors and 152,064 classical nodes of Fugaku, to approximate the electronic structure of chemistry models beyond the reach of exact diagonalization, with accuracy comparable to some all-classical approximation methods. Our work pushes the limits of the integration of quantum and classical high-performance computing, showcasing computational resource orchestration at the largest scale possible for current classical supercomputers.
title Closed-loop calculations of electronic structure on a quantum processor and a classical supercomputer at full scale
topic Quantum Physics
Strongly Correlated Electrons
Computational Physics
url https://arxiv.org/abs/2511.00224