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Noisy, intermediate-scale quantum (NISQ) computing devices offer opportunities to test the principles of quantum computing but are prone to errors arising from various sources of noise.
Theory of fault-tolerant quantum computation
Daniel Gottesman · 1998
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The physical implementation of quantum computation
David P DiVincenzo · 2000
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Scalable and robust randomized benchmarking of quantum processes
Easwar Magesan, Jay M Gambetta, and Joseph Emerson · 2011
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Qubit metrology for building a fault-tolerant quantum computer
John M Martinis · 2015
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Hardware-efficient variational quantum eigensolver for small molecules and quantum magnets
Abhinav Kandala, Antonio Mezzacapo, Kristan Temme, Maika Takita, Markus Brink, Jerry M Chow, and Jay M Gambetta · 2017
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Error mitigation for short-depth quantum circuits
Kristan Temme, Sergey Bravyi, and Jay M Gambetta · 2017
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Assessment of a silicon quantum dot spin qubit environment via noise spectroscopy
K. W. Chan, W. Huang, C. H. Yang, J. C. C. Hwang, B. Hensen, T. Tanttu, F. E. Hudson, K. M. Itoh, A. Laucht, A. Morello, and A. S. Dzurak · 2018
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Cloud quantum computing of an atomic nucleus
Eugene F Dumitrescu, Alex J McCaskey, Gaute Hagen, Gustav R Jansen, Titus D Morris, T Papenbrock, Raphael C Pooser, David Jarvis Dean, and Pavel Lougovski · 2018
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Quantum chemistry calculations on a trapped-ion quantum simulator
Cornelius Hempel, Christine Maier, Jonathan Romero, Jarrod McClean, Thomas Monz, Heng Shen, Petar Jurcevic, Ben P Lanyon, Peter Love, Ryan Babbush, et al · 2018
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Quantum-classical computation of schwinger model dynamics using quantum computers
Natalie Klco, Eugene F Dumitrescu, Alex J McCaskey, Titus D Morris, Raphael C Pooser, Mikel Sanz, Enrique Solano, Pavel Lougovski, and Martin J Savage · 2018
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Decoherence benchmarking of superconducting qubits
Jonathan J Burnett, Andreas Bengtsson, Marco Scigliuzzo, David Niepce, Marina Kudra, Per Delsing, and Jonas Bylander · 2019
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Quantum gate teleportation between separated qubits in a trapped-ion processor
Yong Wan, Daniel Kienzler, Stephen D Erickson, Karl H Mayer, Ting Rei Tan, Jenny J Wu, Hilma M Vasconcelos, Scott Glancy, Emanuel Knill, David J Wineland, et al · 2019
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Quantum computing circuits and devices
Travis S Humble, Himanshu Thapliyal, Edgard Munoz-Coreas, Fahd A Mohiyaddin, and Ryan S Bennink · 2019
Cited alongside, same era.
Quantum computing in the nisq* era and beyond
John Preskill · 2019
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Accrediting outputs of noisy intermediate-scale quantum computing devices
Samuele Ferracin, Theodoros Kapourniotis, and Animesh Datta · 2019
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Quantum chemistry as a benchmark for near-term quantum computers
Alexander J McCaskey, Zachary P Parks, Jacek Jakowski, Shirley V Moore, Titus D Morris, Travis S Humble, and Raphael C Pooser · 2019
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Quantum supremacy using a programmable superconducting processor
Frank Arute, Kunal Arya, Ryan Babbush, Dave Bacon, Joseph C Bardin, Rami Barends, Rupak Biswas, Sergio Boixo, Fernando GSL Brandao, David A Buell, et al · 2019
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Error mitigation extends the computational reach of a noisy quantum processor
Quantum certification and benchmarking
Jens Eisert, Dominik Hangleiter, Nathan Walk, Ingo Roth, Damian Markham, Rhea Parekh, Ulysse Chabaud, and Elham Kashefi · 2020
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A volumetric framework for quantum computer benchmarks
Robin Blume-Kohout and Kevin C. Young · 2020
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Detecting and tracking drift in quantum information processors
Timothy Proctor, Melissa Revelle, Erik Nielsen, Kenneth Rudinger, Daniel Lobser, Peter Maunz, Robin Blume-Kohout, and Kevin Young · 2020
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Rigorous measurement error correction
Michael R Geller · 2020
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Just-in-time quantum circuit transpilation reduces noise
Ellis Wilson, Sudhakar Singh, and Frank Mueller · 2020
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Error-mitigated data-driven circuit learning on noisy quantum hardware
Kathleen E Hamilton and Raphael C Pooser · 2020
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Abhinav Kandala, Kristan Temme, Antonio D Córcoles, Antonio Mezzacapo, Jerry M Chow, and Jay M Gambetta · 2019
Cited alongside, same era.
Qiskit: An open-source framework for quantum computing
Gadi Aleksandrowicz, Thomas Alexander, Panagiotis Barkoutsos, Luciano Bello, Yael Ben-Haim, D Bucher, FJ Cabrera-Hernández, J Carballo-Franquis, A Chen, CF Chen, et al · 2019
Cited alongside, same era.
Efficient verification of quantum processes
Ye-Chao Liu, Jiangwei Shang, Xiao-Dong Yu, and Xiangdong Zhang · 2020
Cited alongside, same era.
Efficient learning of quantum noise
Robin Harper, Steven T Flammia, and Joel J Wallman · 2020
Cited alongside, same era.
Quantum computing for neutrino-nucleus scattering
Alessandro Roggero, Andy CY Li, Joseph Carlson, Rajan Gupta, and Gabriel N Perdue · 2020
Cited alongside, same era.
Hartree-fock on a superconducting qubit quantum computer
Google AI Quantum et al · 2020
Cited alongside, same era.
Quantum computational advantage using photons
Han-Sen Zhong, Hui Wang, Yu-Hao Deng, Ming-Cheng Chen, Li-Chao Peng, Yi-Han Luo, Jian Qin, Dian Wu, Xing Ding, Yi Hu, et al · 2020
Cited alongside, same era.
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Noise Amplification Squeezes More Computational Accuracy From Today’s Quantum Processors
J. Gambetta · 2020
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Geometric approach to quantum statistical inference
Marcin Jarzyna and Jan Kołodyński · 2020
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Characterizing the stability of nisq devices
Samudra Dasgupta and Travis S Humble · 2020
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https://www.ibm.com/quantum-computing/experience/
2020
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Modeling noisy quantum circuits using experimental characterization
Megan L Dahlhauser and Travis S Humble · 2021
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