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Measurement fidelity matrices (MFMs) (also called error kernels) are a natural way to characterize state preparation and measurement errors in near-term quantum hardware.
Generalized cumulant expansion method
Ryogo Kubo · 1962
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Design Patterns: Elements of Reusable Object-Oriented Software
Erich Gamma, Richard Helm, Ralph Johnson, and John Vlissides · 1995
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Measurement of the entanglement of two superconducting qubits via state tomography
Matthias Steffen, M Ansmann, Radoslaw C Bialczak, Nadav Katz, Erik Lucero, R McDermott, Matthew Neeley, Eva Maria Weig, Andrew N Cleland, and John M Martinis · 2006
Earlier work this paper cites.
Quantum process tomography of a universal entangling gate implemented with josephson phase qubits
Radoslaw C Bialczak, Markus Ansmann, Max Hofheinz, Erik Lucero, Matthew Neeley, AD O’Connell, Daniel Sank, Haohua Wang, James Wenner, Matthias Steffen, et al · 2010
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Compressed sensing quantum process tomography for superconducting quantum gates
Andrey V. Rodionov, Andrzej Veitia, R. Barends, J. Kelly, Daniel Sank, J. Wenner, John M. Martinis, Robert L. Kosut, and Alexander N. Korotkov · 2014
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Complexity-Theoretic Foundations of Quantum Supremacy Experiments
Scott Aaronson and Lijie Chen · 2016
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Achieving quantum supremacy with sparse and noisy commuting quantum computations
Michael J. Bremner, Ashley Montanaro, and Dan J. Shepherd · 2017
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Benchmarking gate-based quantum computers
Kristel Michielsen, Madita Nocon, Dennis Willsch, Fengping Jin, Thomas Lippert, and Hans De Raedt · 2017
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Error mitigation for short-depth quantum circuits
Kristan Temme, Sergey Bravyi, and Jay M Gambetta · 2017
Cited alongside, same era.
Efficient variational quantum simulator incorporating active error minimization
Ying Li and Simon C Benjamin · 2017
Cited alongside, same era.
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
Cited alongside, same era.
Quantum computing in the NISQ era and beyond
John Preskill · 2018
Cited alongside, same era.
Practical quantum error mitigation for near-future applications
Suguru Endo, Simon C Benjamin, and Ying Li · 2018
Cited alongside, same era.
Efficient characterization of correlated spam errors, 2018
Mingyu Sun and Michael R. Geller · 2018
Supervised learning with quantum-enhanced feature spaces
Vojtěch Havlíček, Antonio D Córcoles, Kristan Temme, Aram W Harrow, Abhinav Kandala, Jerry M Chow, and Jay M Gambetta · 2019
Later among the works it cites.
Error mitigation extends the computational reach of a noisy quantum processor
Abhinav Kandala, Kristan Temme, Antonio D. Córcoles, Antonio Mezzacapo, Jerry M. Chow, and Jay M. Gambetta · 2019
Later among the works it cites.
Probing context-dependent errors in quantum processors
Kenneth Rudinger, Timothy Proctor, Dylan Langharst, Mohan Sarovar, Kevin Young, and Robin Blume-Kohout · 2019
Later among the works it cites.
Error-mitigated data-driven circuit learning on noisy quantum hardware
Kathleen E Hamilton and Raphael C Pooser · 2019
Later among the works it cites.
Mitigating measurement errors in quantum computers by exploiting state-dependent bias
Swamit S Tannu and Moinuddin K Qureshi · 2019
Later among the works it cites.
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Cited alongside, same era.
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
Cited alongside, same era.
Benchmarking an 11-qubit quantum computer
K Wright, KM Beck, S Debnath, JM Amini, Y Nam, N Grzesiak, J-S Chen, NC Pisenti, M Chmielewski, C Collins, et al · 2019
Cited alongside, same era.
Qiskit: An open-source framework for quantum computing, 2019
Gadi Aleksandrowicz, Thomas Alexander, Panagiotis Barkoutsos, Luciano Bello, Yael Ben-Haim, David Bucher, Francisco Jose Cabrera-Hernádez, Jorge Carballo-Franquis, Adrian Chen, Chun-Fu Chen, Jerry M. Chow, Antonio D. Córcoles-Gonzales, Abigail J. Cross, Andrew Cross, Juan Cruz-Benito, Chris Culver, Salvador De La Puente González, Enrique De La Torre, Delton Ding, Eugene Dumitrescu, Ivan Duran, Pieter Eendebak, Mark Everitt, Ismael Faro Sertage, Albert Frisch, Andreas Fuhrer, Jay Gambetta, Borja Godoy Gago, Juan Gomez-Mosquera, Donny Greenberg, Ikko Hamamura, Vojtech Havlicek, Joe Hellmers, Łukasz Herok, Hiroshi Horii, Shaohan Hu, Takashi Imamichi, Toshinari Itoko, Ali Javadi-Abhari, Naoki Kanazawa, Anton Karazeev, Kevin Krsulich, Peng Liu, Yang Luh, Yunho Maeng, Manoel Marques, Francisco Jose Martín-Fernández, Douglas T. McClure, David McKay, Srujan Meesala, Antonio Mezzacapo, Nikolaj Moll, Diego Moreda Rodríguez, Giacomo Nannicini, Paul Nation, Pauline Ollitrault, Lee James O’Riordan, Hanhee Paik, Jesús Pérez, Anna Phan, Marco Pistoia, Viktor Prutyanov, Max Reuter, Julia Rice, Abdón Rodríguez Davila, Raymond Harry Putra Rudy, Mingi Ryu, Ninad Sathaye, Chris Schnabel, Eddie Schoute, Kanav Setia, Yunong Shi, Adenilton Silva, Yukio Siraichi, Seyon Sivarajah, John A. Smolin, Mathias Soeken, Hitomi Takahashi, Ivano Tavernelli, Charles Taylor, Pete Taylour, Kenso Trabing, Matthew Treinish, Wes Turner, Desiree Vogt-Lee, Christophe Vuillot, Jonathan A. Wildstrom, Jessica Wilson, Erick Winston, Christopher Wood, Stephen Wood, Stefan Wörner, Ismail Yunus Akhalwaya, and Christa Zoufal
Cited in the paper.
Boosting computational power through spatial multiplexing in quantum reservoir computing
Kohei Nakajima, Keisuke Fujii, Makoto Negoro, Kosuke Mitarai, and Masahiro Kitagawa · 2019
Later among the works it cites.
Efficient correction of multiqubit measurement errors, 2020
Michael R. Geller and Mingyu Sun · 2020
Closest in time.
XACC: a system-level software infrastructure for heterogeneous quantum–classical computing
Alexander J McCaskey, Dmitry I Lyakh, Eugene F Dumitrescu, Sarah S Powers, and Travis S Humble · 2020
Closest in time.