Accès ouvert déclaré
2022
preprint
Purification-based quantum error mitigation of pair-correlated electron simulations
T. E. O'Brien, G. Anselmetti, Fotios Gkritsis, Vincent E. Elfving, Stefano Polla, W. J. Huggins, Oumarou Oumarou, K. Kechedzhi, Dmitry A. Abanin, Rajeev Acharya, I. L. Aleǐner, R. M. Allen, T. I. Andersen, K. Anderson, M. Ansmann, Frank Arute, K. Arya, Abraham Asfaw, Juan Atalaya, Dave Bacon, Joseph C. Bardin, A. Bengtsson, Sergio Boixo, Gina Bortoli, A. Bourassa, Jenna Bovaird, L. Brill, M. Broughton, Bob B. Buckley, D. A. Buell, Tim Burger, Brian Burkett, N. Bushnell, Juan Campero, Yuquan Chen, Z. Chen, Benjamin Chiaro, D. Chik, J. Cogan, Roberto Collins, P. Conner, W. Courtney, Alexander L. Crook, Ben Curtin, Dripto M. Debroy, Sean Demura, Ilya Drozdov, A. Dunsworth, C. Erickson, Lara Faoro, Edward Farhi, Reza Fatemi, V. S. Ferreira, Leslie Flores Burgos, Ebrahim Forati, Austin G. Fowler, Brooks Foxen, William Giang, Craig Gidney, D. Gilboa, M. Giustina, Raja Gosula, Alejandro Grajales Dau, J. A. Gross, S. Habegger, Michael C. Hamilton, M. Hansen, M. P. Harrigan, Sean D. Harrington, P. Heu, Jeremy Hilton, M. R. Hoffmann, Seungbo Hong, T. Huang, A. Huff, L. B. Ioffe, S. V. Isakov, J. Iveland, E. Jeffrey, Zhang Jiang, C. Jones, P. Juhas, D. Kafri, J. Kelly, Tanuj Khattar, M. Khezri, Mária Kieferová, S. Kim, P. V. Klimov, A. R. Klots, Robin Kothari, A. N. Korotkov, F. Kostritsa, John Mark Kreikebaum, D. Landhuis, P. Laptev, K. T. Lau, L. Laws, J. Lee, K. Lee, B. J. Lester, A. T. Lill, W. Liu, William P. Livingston, A. Locharla, E. Lucero, F. D. Malone, Salvatore Mandrà, O. Martin, Steven W. Martin, J. R. McClean, Trevor McCourt, Matt McEwen, A. Megrant, Xiao Mi, A. Mieszala, K. C. Miao, Masoud Mohseni, Shirin Montazeri, A. Morvan, R. Movassagh, W. Mruczkiewicz, O. Naaman, M. Neeley, C. Neill, A. Nersisyan, H. Neven, Michael Newman, J. H. Ng, A. Nguyen, Minh T. P. Nguyen, M. Y. Niu, S. Omonije, A. Opremcak, A. Petukhov, R. Potter, L. P. Pryadko, C. Quintana, C. Rocque, P. Roushan, N. Saei, D. Sank, K. Sankaragomathi, Kevin J. Satzinger, H. F. Schurkus, C. Schuster, M. J. Shearn, A. Shorter, Noah Shutty, V. Shvarts, J. Skruzny, V. Smelyanskiy, W. C. Smith, Rolando D. Somma, G. Sterling, D. Strain, M. Szalay, Douglas Thor, A. Torres, G. Vidal, B. Villalonga, C. Vollgraff Heidweiller, T. White, B. W. K. Woo, C. Xing, Z. J. Yao, P. Yeh, Juhwan Yoo, G. Young, A. Zalcman, Y. Zhang, N. Zhu, Nicholas Zobrist, Christian Gogolin, R. Babbush, N. C. Rubin
11Citations signalées, ce qui n’est pas une note de qualité
11Institutions déclarées
4Pays d’affiliation déclarés
Rattachement africain : nl, us, de, au.
Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
An important measure of the development of quantum computing platforms has been the simulation of increasingly complex physical systems. Prior to fault-tolerant quantum computing, robust error mitigation strategies are necessary to continue this growth. Here, we study physical simulation within the seniority-zero electron pairing subspace, which affords both a computational stepping stone to a fully correlated model, and an opportunity to validate recently introduced ``purification-based'' error-mitigation strategies. We compare the performance of error mitigation based on doubling quantum resources in time (echo verification) or in space (virtual distillation), on up to $20$ qubits of a superconducting qubit quantum processor. We observe a reduction of error by one to two orders of magnitude below less sophisticated techniques (e.g. post-selection); the gain from error mitigation is seen to increase with the system size. Employing these error mitigation strategies enables the implementation of the largest variational algorithm for a correlated chemistry system to-date. Extrapolating performance from these results allows us to estimate minimum requirements for a beyond-classical simulation of electronic structure. We find that, despite the impressive gains from purification-based error mitigation, significant hardware improvements will be required for classically intractable variational chemistry simulations.
Ce résumé expose les affirmations des auteurs. BNTIC ne l’interprète pas comme une validation indépendante des résultats.
Le contrôle bibliographique ouvert
La source scientifique ouverte est momentanément indisponible.
Les institutions déclarées
Une affiliation ne permet pas de déduire la nationalité d’un auteur.
Les sujets associés
Quantum Computing Algorithms and ArchitectureQuantum and electron transport phenomenaSemiconductor materials and devices