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While quantum computers promise to solve some scientifically and commercially valuable problems thought intractable for classical machines, delivering on this promise will require a large-scale quantum machine.
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Threshold error penalty for fault-tolerant quantum computation with nearest neighbor communication
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Suppressing charge noise decoherence in superconducting charge qubits
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International Journal of Quantum Information
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Sergey Bravyi, David Poulin, and Barbara Terhal · 2010
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An introduction to quantum error correction and fault-tolerant quantum computation
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Quantum network communication—the butterfly and beyond
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Quantum algorithm zoo
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Surface code quantum computing with error rates over 1
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Scaffold: Quantum programming language
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Surface codes: Towards practical large-scale quantum computation
Austin G. Fowler, Matteo Mariantoni, John M. Martinis, and Andrew N. Cleland · 2012
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Surface code quantum computing by lattice surgery
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Classification of topologically protected gates for local stabilizer codes
Sergey Bravyi and Robert König · 2013
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Superconducting circuits for quantum information: An outlook
M. H. Devoret and R. J. Schoelkopf · 2013
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Quipper: a scalable quantum programming language
Alexander S Green, Peter LeFanu Lumsdaine, Neil J Ross, Peter Selinger, and Benoît Valiron · 2013
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Qure: The quantum resource estimator toolbox
Martin Suchara, John Kubiatowicz, Arvin Faruque, Frederic T. Chong, Ching-Yi Lai, and Gerardo Paz · 2013
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Quantum error correcting codes and 4-dimensional arithmetic hyperbolic manifolds
Larry Guth and Alexander Lubotzky · 2014
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Scaffcc: A framework for compilation and analysis of quantum computing programs
Ali JavadiAbhari, Shruti Patil, Daniel Kudrow, Jeff Heckey, Alexey Lvov, Frederic T Chong, and Margaret Martonosi · 2014
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Quantum ldpc codes with positive rate and minimum distance proportional to the square root of the blocklength
Superconducting qubits: Current state of play
Morten Kjaergaard, Mollie E Schwartz, Jochen Braumüller, Philip Krantz, Joel I-J Wang, Simon Gustavsson, and William D Oliver · 2020
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Myth vs. reality: a practical perspective on quantum computing, 2020
Julie Love · 2020
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Enabling accuracy-aware quantum compilers using symbolic resource estimation
Giulia Meuli, Mathias Soeken, Martin Roetteler, and Thomas Häner · 2020
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Architecting noisy intermediate-scale trapped ion quantum computers
Prakash Murali, Dripto M. Debroy, Kenneth R. Brown, and Margaret Martonosi · 2020
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Simulating many-body quantum systems: Quantum algorithms and experimental realisation
Natalie Pearson · 2020
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Optimizing Clifford gate generation for measurement-only topological quantum computation with Majorana zero modes
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Jean-Pierre Tillich and Gilles Zémor · 2014
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Universal linear optics
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Quantum expander codes
Anthony Leverrier, Jean-Pierre Tillich, and Gilles Zémor · 2015
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Majorana zero modes and topological quantum computation
Sankar Das Sarma, Michael Freedman, and Chetan Nayak · 2015
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Protected gates for topological quantum field theories
Michael E Beverland, Oliver Buerschaper, Robert Koenig, Fernando Pastawski, John Preskill, and Sumit Sijher · 2016
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Toward realizable quantum computers
Michael Edward Beverland · 2016
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Intel 64 and IA-32 Architectures Software Developer’s Manual
Intel · 2016
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Alan Tran, Alex Bocharov, Bela Bauer, and Parsa Bonderson · 2020
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Disentangling hype from reality: Achieving practical quantum advantage
Matthias Troyer · 2020
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Fault-tolerant thresholds for the surface code in excess of 5 % 5\% under biased noise
David K. Tuckett, Stephen D. Bartlett, Steven T. Flammia, and Benjamin J. Brown · 2020
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The cost of universality: A comparative study of the overhead of state distillation and code switching with color codes, 2021
Michael E. Beverland, Aleksander Kubica, and Krysta M. Svore · 2021
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Logical blocks for fault-tolerant topological quantum computation, 2021
Hector Bombin, Chris Dawson, Ryan V. Mishmash, Naomi Nickerson, Fernando Pastawski, and Sam Roberts · 2021
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Interleaving: Modular architectures for fault-tolerant photonic quantum computing
Hector Bombin, Isaac H Kim, Daniel Litinski, Naomi Nickerson, Mihir Pant, Fernando Pastawski, Sam Roberts, and Terry Rudolph · 2021
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Universal quantum computing with twist-free and temporally encoded lattice surgery
Christopher Chamberland and Earl T. Campbell · 2021
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Nicolas Delfosse, Michael E Beverland, and Maxime A Tremblay · 2021
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How to factor 2048 bit RSA integers in 8 hours using 20 million noisy qubits
Craig Gidney and Martin Ekerå · 2021
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Factoring 2048-bit rsa integers in 177 days with 13 436 qubits and a multimode memory
Elie Gouzien and Nicolas Sangouard · 2021
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Dynamically Generated Logical Qubits
Matthew B. Hastings and Jeongwan Haah · 2021
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Demonstration of quantum volume 64 on a superconducting quantum computing system
Petar Jurcevic, Ali Javadi-Abhari, Lev S Bishop, Isaac Lauer, Daniela F Bogorin, Markus Brink, Lauren Capelluto, Oktay Günlük, Toshinari Itoko, Naoki Kanazawa, Abhinav Kandala, George A Keefe, Kevin Krsulich, William Landers, Eric P Lewandowski, Douglas T McClure, Giacomo Nannicini, Adinath Narasgond, Hasan M Nayfeh, Emily Pritchett, Mary Beth Rothwell, Srikanth Srinivasan, Neereja Sundaresan, Cindy Wang, Ken X Wei, Christopher J Wood, Jeng-Bang Yau, Eric J Zhang, Oliver E Dial, Jerry M Chow, and Jay M Gambetta · 2021
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Halving the cost of quantum multiplexed rotations, 2021
Guang Hao Low · 2021
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A mlir dialect for quantum assembly languages
Alexander McCaskey and Thien Nguyen · 2021
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Improved quantum error correction using soft information
Christopher A Pattison, Michael E Beverland, Marcus P da Silva, and Nicolas Delfosse · 2021
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Demonstration of the trapped-ion quantum ccd computer architecture
Juan M Pino, Jennifer M Dreiling, Caroline Figgatt, John P Gaebler, Steven A Moses, MS Allman, CH Baldwin, M Foss-Feig, D Hayes, K Mayer, et al · 2021
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RISC-V instruction set architecture (ISA) and related specifications, 2021
RISCV · 2021
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Quantum computing is scalable on a planar array of qubits with fabrication defects
Armands Strikis, Simon C Benjamin, and Benjamin J Brown · 2021
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Quantum computing enhanced computational catalysis
Vera von Burg, Guang Hao Low, Thomas Häner, Damian S. Steiger, Markus Reiher, Martin Roetteler, and Matthias Troyer · 2021
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Surface code compilation via edge-disjoint paths
Michael Beverland, Vadym Kliuchnikov, and Eddie Schoute · 2022
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A quantum processor based on coherent transport of entangled atom arrays
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The future of quantum computing with superconducting qubits
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Circuit-level protocol and analysis for twist-based lattice surgery
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Building a fault-tolerant quantum computer using concatenated cat codes
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