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In the race to build scalable quantum computers, minimizing the resource consumption of their full stack to achieve a target performance becomes crucial.
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2013
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2014
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2015
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2015
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2015
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Markus Grassl, Brandon Langenberg, Martin Roetteler, and Rainer Steinwandt, “Applying Grover’s Algorithm to AES: Quantum Resource Estimates,” in Post-Quantum Cryptography (Springer, Cham, Switzerland, 2016) pp. 29–43
2016
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2016
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Ville Lahtinen and Jiannis Pachos, “A short introduction to topological quantum computation,” SciPost Physics 3
2017
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Christopher Chamberland, Tomas Jochym-O’Connor, and Raymond Laflamme, “Overhead analysis of universal concatenated quantum codes,” Phys. Rev. A 95
2017
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C. G. Almudever, L. Lao, X. Fu, N. Khammassi, I. Ashraf, D. Iorga, S. Varsamopoulos, C. Eichler, A. Wallraff, L. Geck, A. Kruth, J. Knoch, H. Bluhm, and K. Bertels, “The engineering challenges in quantum computing,” in Design, Automation & Test in Europe Conference & Exhibition (DATE), 2017 (IEEE, 2017) pp. 836–845
2017
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Nathanaël Cottet, Sébastien Jezouin, Landry Bretheau, Philippe Campagne-Ibarcq, Quentin Ficheux, Janet Anders, Alexia Auffèves, Rémi Azouit, Pierre Rouchon, and Benjamin Huard, “Observing a quantum maxwell demon at work,” Proceedings of the National Academy of Sciences 114
2017
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Thomas Häner, M. Rötteler, and K. Svore, “Factoring using 2 n + 2 2n+2 qubits with Toffoli based modular multiplication,” Quantum Information and Computation 17
2017
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2018
Cited alongside, same era.
Y. Cao, J. Romero, and A. Aspuru-Guzik, “Potential of quantum computing for drug discovery,” IBM J. Res. Dev. 62
2018
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R McDermott, MG Vavilov, BLT Plourde, FK Wilhelm, PJ Liebermann, OA Mukhanov, and TA Ohki, “Quantum–classical interface based on single flux quantum digital logic,” Quantum science and technology 3
2018
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Koki Ishida, Masamitsu Tanaka, Takatsugu Ono, and Koji Inoue, “Towards ultra-high-speed cryogenic single-flux-quantum computing,” IEICE Transactions on Electronics 101
Maximillian Zinner, Florian Dahlhausen, Philip Boehme, Jan Ehlers, Linn Bieske, and Leonard Fehring, “Quantum computing’s potential for drug discovery: Early stage industry dynamics,” Drug Discovery Today 26
2021
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2021
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Craig Gidney and Martin Ekerå, “How to factor 2048 bit RSA integers in 8 hours using 20 million noisy qubits,” Quantum 5
2021
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Jérémie Guillaud and Mazyar Mirrahimi, “Error rates and resource overheads of repetition cat qubits,” Phys. Rev. A 103
2021
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Earl T Campbell, “Early fault-tolerant simulations of the hubbard model,” Quantum Science and Technology 7
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2018
Cited alongside, same era.
John Preskill, “Quantum Computing in the NISQ era and beyond,” Quantum 2
2018
Cited alongside, same era.
Mark Wade, Michael Davenport, Marc De Cea Falco, Pavan Bhargava, John Fini, Derek Van Orden, Roy Meade, Evelina Yeung, Rajeev Ram, Miloš Popović, et al. , “A bandwidth-dense, low power electronic-photonic platform and architecture for multi-tbps optical i/o,” in 2018 European Conference on Optical Communication (ECOC) (IEEE, 2018) pp. 1–3
2018
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Yves Salathé, Philipp Kurpiers, Thomas Karg, Christian Lang, Christian Kraglund Andersen, Abdulkadir Akin, Sebastian Krinner, Christopher Eichler, and Andreas Wallraff, “Low-Latency Digital Signal Processing for Feedback and Feedforward in Quantum Computing and Communication,” Phys. Rev. Appl. 9
2018
Cited alongside, same era.
Yudong Cao, Jonathan Romero, Jonathan P. Olson, Matthias Degroote, Peter D. Johnson, Mária Kieferová, Ian D. Kivlichan, Tim Menke, Borja Peropadre, Nicolas P. D. Sawaya, Sukin Sim, Libor Veis, and Alán Aspuru-Guzik, “Quantum Chemistry in the Age of Quantum Computing,” Chem. Rev. 119
2019
Cited alongside, same era.
Sergei Slussarenko and Geoff J. Pryde, “Photonic quantum information processing: A concise review,” Appl. Phys. Rev. 6
2019
Cited alongside, same era.
Colin D. Bruzewicz, John Chiaverini, Robert McConnell, and Jeremy M. Sage, “Trapped-ion quantum computing: Progress and challenges,” Appl. Phys. Rev. 6
2019
Cited alongside, same era.
Sebastian Krinner, Simon Storz, Philipp Kurpiers, Paul Magnard, Johannes Heinsoo, Raphael Keller, Janis Luetolf, Christopher Eichler, and Andreas Wallraff, “Engineering cryogenic setups for 100-qubit scale superconducting circuit systems,” EPJ Quantum Technology 6
2019
Cited alongside, same era.
2021
Later among the works it cites.
Jessica Lemieux, Guillaume Duclos-Cianci, David Sénéchal, and David Poulin, “Resource estimate for quantum many-body ground-state preparation on a quantum computer,” Physical Review A 103
2021
Later among the works it cites.
Gaia Donati, “A look at the full stack,” Nat. Rev. Phys. 3
2021
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Carmen G Almudever and Eduard Alarcon, “Structured optimized architecting of full-stack quantum systems in the nisq era,” in 2021 Design, Automation & Test in Europe Conference & Exhibition (DATE) (IEEE, 2021) pp. 762–767
2021
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Santiago Rodrigo, Sergi Abadal, Eduard Alarcón, Medina Bandic, Hans Van Someren, and Carmen G Almudéver, “On double full-stack communication-enabled architectures for multicore quantum computers,” IEEE micro 41
2021
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Jong-Seok Park, Sushil Subramanian, Lester Lampert, Todor Mladenov, Ilya Klotchkov, Dileep J Kurian, Esdras Juarez-Hernandez, Brando Perez-Esparza, Sirisha Rani Kale, KT Asma Beevi, et al. , “13.1 a fully integrated cryo-cmos soc for qubit control in quantum computers capable of state manipulation, readout and high-speed gate pulsing of spin qubits in intel 22nm ffl finfet technology,” in 2021 IEEE International Solid-State Circuits Conference (ISSCC) , Vol. 64 (IEEE, 2021) pp. 208–210
2021
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Evan D. Walsh, Woochan Jung, Gil-Ho Lee, Dmitri K. Efetov, Bae-Ian Wu, K.-F. Huang, Thomas A. Ohki, Takashi Taniguchi, Kenji Watanabe, Philip Kim, Dirk Englund, and Kin Chung Fong, “Josephson junction infrared single-photon detector,” Science 372
2021
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2021
Later among the works it cites.
Marco Fellous-Asiani, Jing Hao Chai, Robert S. Whitney, Alexia Auffèves, and Hui Khoon Ng, “Limitations in quantum computing from resource constraints,” PRX Quantum 2
2021
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Simon Martiel, Thomas Ayral, and Cyril Allouche, “Benchmarking Quantum Coprocessors in an Application-Centric, Hardware-Agnostic, and Scalable Way,” IEEE Transactions on Quantum Engineering 2
2021
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The Green500 is at top500.org , the most recent list at the time of writing was Nov. 2021
2021
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See e.g. Google AI Quantum Computer Datasheet
2021
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M. Werninghaus, D. J. Egger, F. Roy, S. Machnes, F. K. Wilhelm, and S. Filipp, “Leakage reduction in fast superconducting qubit gates via optimal control,” npj Quantum Inf. 7
2021
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Jong-Seok Park, Sushil Subramanian, Lester Lampert, Todor Mladenov, Ilya Klotchkov, Dileep J. Kurian, Esdras Juarez-Hernandez, Brando Perez-Esparza, Sirisha Rani Kale, K. T. Asma Beevi, Shavindra Premaratne, Thomas Watson, Satoshi Suzuki, Mustafijur Rahman, Jaykant B. Timbadiya, Saksham Soni, and Stefano Pellerano, “13.1 A Fully Integrated Cryo-CMOS SoC for Qubit Control in Quantum Computers Capable of State Manipulation, Readout and High-Speed Gate Pulsing of Spin Qubits in Intel 22nm FFL FinFET Technology,” in 2021 IEEE International Solid- State Circuits Conference (ISSCC) , Vol. 64 (IEEE, 2021) pp. 208–210
2021
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N. Delfosse and N. H. Nickerson, “Almost-linear time decoding algorithm for topological codes,” Quantum 5
2021
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“Cryogenic electronics and quantum information processing. 2021 update.” International roadmap for devices and systems (2021), 10.1109/irds54852.2021.00012
2021
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David Amaro, Carlo Modica, Matthias Rosenkranz, Mattia Fiorentini, Marcello Benedetti, and Michael Lubasch, “Filtering variational quantum algorithms for combinatorial optimization,” Quantum Sci. Technol. 7
2022
Closest in time.
Christopher Chamberland, Kyungjoo Noh, Patricio Arrangoiz-Arriola, Earl T. Campbell, Connor T. Hann, Joseph Iverson, Harald Putterman, Thomas C. Bohdanowicz, Steven T. Flammia, Andrew Keller, Gil Refael, John Preskill, Liang Jiang, Amir H. Safavi-Naeini, Oskar Painter, and Fernando G. S. L. Brandão, “Building a Fault-Tolerant Quantum Computer Using Concatenated Cat Codes,” PRX Quantum 3
2022
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Kyungjoo Noh, Christopher Chamberland, and Fernando GSL Brandão, “Low-overhead fault-tolerant quantum error correction with the surface-gkp code,” PRX Quantum 3
2022
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Isaac H Kim, Ye-Hua Liu, Sam Pallister, William Pol, Sam Roberts, and Eunseok Lee, “Fault-tolerant resource estimate for quantum chemical simulations: Case study on li-ion battery electrolyte molecules,” Physical Review Research 4
2022
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Alain Delgado, Pablo A. M. Casares, Roberto dos Reis, Modjtaba Shokrian Zini, Roberto Campos, Norge Cruz-Hernández, Arne-Christian Voigt, Angus Lowe, Soran Jahangiri, M. A. Martin-Delgado, Jonathan E. Mueller, and Juan Miguel Arrazola, “Simulating key properties of lithium-ion batteries with a fault-tolerant quantum computer,” Phys. Rev. A 106
2022
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2022
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Michael James Martin, Caroline Hughes, Gilberto Moreno, Eric B Jones, David Sickinger, Sreekant Narumanchi, and Ray Grout, “Energy use in quantum data centers: Scaling the impact of computer architecture, qubit performance, size, and thermal parameters,” IEEE Transactions on Sustainable Computing (2022), 10.1109/TSUSC.2022.3190242
2022
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David J Frank, Sudipto Chakraborty, Kevin Tien, Pat Rosno, Thomas Fox, Mark Yeck, Joseph A Glick, Raphael Robertazzi, Ray Richetta, John F Bulzacchelli, et al. , “A cryo-cmos low-power semi-autonomous qubit state controller in 14nm finfet technology,” in 2022 IEEE International Solid-State Circuits Conference (ISSCC) , Vol. 65 (IEEE, 2022) pp. 360–362
2022
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2022
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Medina Bandic, Sebastian Feld, and Carmen G. Almudever, “Full-stack quantum computing systems in the NISQ era: algorithm-driven and hardware-aware compilation techniques,” 2022 Design, Automation & Test in Europe Conference & Exhibition (DATE) , 2022 Design, Automation & Test in Europe Conference & Exhibition (DATE) , 1–6 (2022)
2022
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2022
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M. Malnou, J. Aumentado, M. R. Vissers, J. D. Wheeler, J. Hubmayr, J. N. Ullom, and J. Gao, “Performance of a Kinetic Inductance Traveling-Wave Parametric Amplifier at 4 Kelvin: Toward an Alternative to Semiconductor Amplifiers,” Phys. Rev. Appl. 17
2022
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Alexia Auffèves, “Quantum Technologies Need a Quantum Energy Initiative,” PRX Quantum 3
2022
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Chenlu Wang, Xuegang Li, Huikai Xu, Zhiyuan Li, Junhua Wang, Zhen Yang, Zhenyu Mi, Xuehui Liang, Tang Su, Chuhong Yang, Guangyue Wang, Wenyan Wang, Yongchao Li, Mo Chen, Chengyao Li, Kehuan Linghu, Jiaxiu Han, Yingshan Zhang, Yulong Feng, Yu Song, Teng Ma, Jingning Zhang, Ruixia Wang, Peng Zhao, Weiyang Liu, Guangming Xue, Yirong Jin, and Haifeng Yu, “Towards practical quantum computers: transmon qubit with a lifetime approaching 0.5 milliseconds,” npj Quantum Inf. 8
2022
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