Accès ouvert déclaré
2025
article
Scaling and logic in the colour code on a superconducting quantum processor
Nathan Lacroix, Alexandre Bourassa, Francisco J. H. Heras, L. M. Zhang, Johannes Bausch, Andrew Senior, Thomas Edlich, Noah Shutty, V. Sivak, Andreas Bengtsson, Matt McEwen, Oscar Higgott, Dvir Kafri, Jahan Claes, Alexis Morvan, Z. Chen, Adam Zalcman, Sid Madhuk, R. Acharya, Laleh Aghababaie Beni, Georg Aigeldinger, Raúl Alcaraz, Trond I. Andersen, M. Ansmann, Frank Arute, K. Arya, Abraham Asfaw, J. Atalaya, Ryan Babbush, B. Ballard, Joseph C. Bardin, A. Bilmes, Susan Blackwell, J. Bovaird, Daniel C. Bowers, Leon Brill, Michael Broughton, D. A. Browne, Brett Buchea, B. B. Buckley, T. Burger, Brian Burkett, N. Bushnell, A. Cabrera, J. Campero, Hung-Shen Chang, Benjamin Chiaro, Liang-Ying Chih, Agnetta Y. Cleland, J. Cogan, R. Collins, P. Conner, W. Courtney, A. L. Crook, Ben Curtin, Sayan Das, Sean Demura, Luis Lorenzo, Agustín Di Paolo, Paul Donohoe, Ilya Drozdov, A. Dunsworth, Alec Eickbusch, Aviv Moshe Elbag, Mahmoud Elzouka, C. Erickson, V. S. Ferreira, Leslie Flores Burgos, E. Forati, A. G. Fowler, Brooks Foxen, Suhas Ganjam, G. Garcia, Rebeca Gasca, Élie Genois, W. Giang, D. Gilboa, Raja Gosula, Alejandro Grajales Dau, Dietrich Graumann, Alex Greene, Jonathan A. Gross, Taekjip Ha, Steve Habegger, M. Hansen, Matthew P. Harrigan, Sean D. Harrington, Stephen Heslin, Paula Heu, Reno Hiltermann, J. Hilton, Sabrina Hong, Hanxia Huang, Ashley Huff, William J. Huggins, E. Jeffrey, Jiang Zhang, Xin Jin, Chaitanya Joshi, Pavol Juhás, A. Kabel, Hyunsun Kang, Amir H. Karamlou, Kostyantyn Kechedzhi, Trupti Khaire, Tanuj Khattar, Mostafa Khezri, Seon Kim, Paul V. Klimov, Bryce Kobrin, A. N. Korotkov, F. Kostritsa, John Mark Kreikebaum, Vladislav D. Kurilovich, David Landhuis, Tiano Lange-Dei, Brandon W. Langley, P. Laptev, K.-M. Lau, Julie G. Ledford, Kenneth Lee, Brian Lester, Loïck Le Guevel, Wing Yan Li, Yin Li, A. T. Lill, William P. Livingston, A. Locharla, E. Lucero, Daniel Lundahl, Aidan Lunt, Alan Maloney, Salvatore Mandrà, Leigh S. Martin, O. Martin, Cameron Maxfield, Jarrod R. McClean, Sanford L. Meeks, A. Megrant, K. C. Miao, Reza Molavi, Sophie Molina, Shirin Montazeri, R. Movassagh, Charles Neill, Michael Newman, A. Nguyen, Minh T. P. Nguyen, Chia-Hung Ni, M. Y. Niu, Logan Oas, William D. Oliver, R. Orosco, Kristoffer Ottosson, A. Pizzuto, R. Potter, Orion Pritchard, C. Quintana, Gowri Ramachandran, Matthew J. Reagor, R. Resnick, David M. Rhodes, Gareth A. Roberts, Eliott Rosenberg, Emma Rosenfeld, E. Rossi, P. Roushan, Kannan Sankaragomathi, Henry F. Schurkus, M. J. Shearn, A. Shorter, V. Shvarts, Steven L. Small, W. Clarke Smith, Sabine Springer, Gilbert Sterling, Jordan Suchard, Aaron Szasz, Alex Sztein, Douglas Thor, Eiji Tomita, A. Torres, Mustafa Mert Torunbalcı, Avani S. Vaishnav, J. E. Ramirez Vargas, Sergey Vdovichev, Guifré Vidal, Catherine Vollgraff Heidweiller, Steven Waltman, J. Waltz, S. X. Wang, Brayden Ware, Travis Weidel, T. White, Kam‐Fai Wong, Bryan W. K. Woo, Madison Woodson, C. Xing, Z. Jamie Yao, P. Yeh, Bicheng Ying, J. Yoo, Noureldin Yosri, G. Young, Y. Zhang, Ningfeng Zhu, N. Zobrist, Hartmut Neven, Pushmeet Kohli, Alex Davies, Sergio Boixo, J. Kelly, C. Jones, C. Gidney, Kevin J. Satzinger
47Citations signalées, ce qui n’est pas une note de qualité
8Institutions déclarées
3Pays d’affiliation déclarés
Rattachement africain : us, ch, gb.
Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
Quantum error correction [1–4] is essential for bridging the gap between the error rates of physical devices and the extremely low error rates required for quantum algorithms. Recent error-correction demonstrations on superconducting processors [5–8] have focused primarily on the surface code [9], which offers a high error threshold but poses limitations for logical operations. The color code [10] enables more efficient logic, but it requires more complex stabilizer measurements and decoding. Measuring these stabilizers in planar architectures like superconducting qubits is challenging, and realizations of color codes [11–19] have not addressed performance scaling with code size on any platform. Here, we present a comprehensive demonstration of the color code on a superconducting processor [8]. Scaling the code distance from three to five suppresses logical errors by a factor of Λ 3/5 = 1.56(4). Simulations indicate this performance is below the threshold of the color code, and the color code may become more efficient than the surface code following modest device improvements. We test transversal Clifford gates with logical randomized benchmarking [20] and inject magic states [21], a key resource for universal computation, achieving fidelities exceeding 99 % with post-selection. Finally, we teleport logical states between color codes using lattice surgery [22]. This work establishes the color code as a compelling research direction to realize fault-tolerant quantum computation on superconducting processors in the near future.
Ce résumé expose les affirmations des auteurs. BNTIC ne l’interprète pas comme une validation indépendante des résultats.
Le contrôle bibliographique ouvert
DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- Scaling and logic in the colour code on a superconducting quantum processor
- Date Crossref
- 26/05/2025
- Éditeur
- Springer Science and Business Media LLC
- Type
- journal-article
Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.
Les institutions déclarées
Une affiliation ne permet pas de déduire la nationalité d’un auteur.
Les sujets associés
Quantum Computing Algorithms and ArchitectureQuantum-Dot Cellular AutomataNeural Networks and Reservoir Computing