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Quantum computers offer a new paradigm of computing with the potential to vastly outperform any imagineable classical computer.
Simulating physics with computers, 1981
Richard P Feynman · 1981
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A fast quantum mechanical algorithm for database search
Lov K. Grover · 1996
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Quantum mechanics helps in searching for a needle in a haystack
L K Grover · 1997
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Polynomial-time algorithms for prime factorization and discrete logarithms on a quantum computer
Peter W. Shor · 1997
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Architectures for a quantum random access memory
Vittorio Giovannetti, Seth Lloyd, and Lorenzo Maccone · 2008
Earlier work this paper cites.
Quantum random access memory
Vittorio Giovannetti, Seth Lloyd, and Lorenzo Maccone · 2008
Cited alongside, same era.
Quantum algorithm for linear systems of equations
Aram W. Harrow, Avinatan Hassidim, and Seth Lloyd · 2009
Cited alongside, same era.
Halving the cost of quantum addition
Craig Gidney · 2018
Cited alongside, same era.
GlobalFoundries: 7nm, 5nm and 3nm Logic, current and projected processes, 2018
Scott Jones · 2018
Cited alongside, same era.
Efficient magic state factories with a catalyzed | C C Z ⟩ |CCZ\rangle to 2 | T ⟩ 2|T\rangle transformation
Craig Gidney and Austin G. Fowler · 2019
Cited alongside, same era.
Quantum supremacy using a programmable superconducting processor
Frank Arute, Kunal Arya, Ryan Babbush, Dave Bacon, Joseph Bardin, Rami Barends, Rupak Biswas, Sergio Boixo, Fernando Brandao, David Buell, Brian Burkett, Yu Chen, Jimmy Chen, Ben Chiaro, Roberto Collins, William Courtney, Andrew Dunsworth, Edward Farhi, Brooks Foxen, Austin Fowler, Craig Michael Gidney, Marissa Giustina, Rob Graff, Keith Guerin, Steve Habegger, Matthew Harrigan, Michael Hartmann, Alan Ho, Markus Rudolf Hoffmann, Trent Huang, Travis Humble, Sergei Isakov, Evan Jeffrey, Zhang Jiang, Dvir Kafri, Kostyantyn Kechedzhi, Julian Kelly, Paul Klimov, Sergey Knysh, Alexander Korotkov, Fedor Kostritsa, Dave Landhuis, Mike Lindmark, Erik Lucero, Dmitry Lyakh, Salvatore Mandrà, Jarrod Ryan McClean, Matthew McEwen, Anthony Megrant, Xiao Mi, Kristel Michielsen, Masoud Mohseni, Josh Mutus, Ofer Naaman, Matthew Neeley, Charles Neill, Murphy Yuezhen Niu, Eric Ostby, Andre Petukhov, John Platt, Chris Quintana, Eleanor G. Rieffel, Pedram Roushan, Nicholas Rubin, Daniel Sank, Kevin J. Satzinger, Vadim Smelyanskiy, Kevin Jeffery Sung, Matt Trevithick, Amit Vainsencher, Benjamin Villalonga, Ted White, Z. Jamie Yao, Ping Yeh, Adam Zalcman, Hartmut Neven, and John Martinis
Cited in the paper.
NVIDIA A100 Tensor Core GPU Architecture, 2020
NVIDIA Corporation · 2020
Later among the works it cites.
Degree vs. approximate degree and quantum implications of huang’s sensitivity theorem
Scott Aaronson, Shalev Ben-David, Robin Kothari, Shravas Rao, and Avishay Tal · 2021
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Focus beyond quadratic speedups for error-corrected quantum advantage
Ryan Babbush, Jarrod R. McClean, Michael Newman, Craig Gidney, Sergio Boixo, and Hartmut Neven · 2021
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Fpnew: An open-source multiformat floating-point unit architecture for energy-proportional transprecision computing
Stefan Mach, Fabian Schuiki, Florian Zaruba, and Luca Benini · 2021
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Assessing requirements to scale to practical quantum advantage, 2022
Michael E. Beverland, Prakash Murali, Matthias Troyer, Krysta M. Svore, Torsten Hoefler, Vadym Kliuchnikov, Guang Hao Low, Mathias Soeken, Aarthi Sundaram, and Alexander Vaschillo · 2022
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