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The ability to generate large-scale entanglement is an important progenitor of quantum information processing capability in noisy intermediate-scale quantum (NISQ) devices.
Can quantum-mechanical description of physical reality be considered complete?
Albert Einstein, Boris Podolsky, and Nathan Rosen · 1935
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Asher Peres · 1996
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Quantum entanglement as a quantifiable resource
William K Wootters · 1998
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Polynomial-time algorithms for prime factorization and discrete logarithms on a quantum computer
Peter W Shor · 1999
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A one-way quantum computer
Robert Raussendorf and Hans J Briegel · 2001
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Persistent entanglement in arrays of interacting particles
Hans J Briegel and Robert Raussendorf · 2001
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Separability of n-particle mixed states: necessary and sufficient conditions in terms of linear maps
Michał Horodecki, Paweł Horodecki, and Ryszard Horodecki · 2001
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Computable measure of entanglement
Guifré Vidal and Reinhard F Werner · 2002
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Efficient classical simulation of slightly entangled quantum computations
Guifré Vidal · 2003
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Measurement-based quantum computation on cluster states
Robert Raussendorf, Daniel E Browne, and Hans J Briegel · 2003
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Renormalization algorithms for quantum-many body systems in two and higher dimensions
Frank Verstraete and J Ignacio Cirac · 2004
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Multiparty entanglement in graph states
Marc Hein, Jens Eisert, and Hans J Briegel · 2004
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Entanglement detection in the stabilizer formalism
Géza Tóth and Otfried Gühne · 2005
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The structure of bipartite quantum states-insights from group theory and cryptography
Matthias Christandl · 2006
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Producing cluster states in charge qubits and flux qubits
Tetsufumi Tanamoto, Yu-xi Liu, Shinobu Fujita, Xuedong Hu, and Franco Nori · 2006
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An introduction to entanglement measures
Martin B Plenio and Shashank Virmani · 2007
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Efficient one-step generation of large cluster states with solid-state circuits
JQ You, Xiang-bin Wang, Tetsufumi Tanamoto, and Franco Nori · 2007
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Matrix product states, projected entangled pair states, and variational renormalization group methods for quantum spin systems
Frank Verstraete, Valentin Murg, and J Ignacio Cirac · 2008
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Quantum entanglement
Ryszard Horodecki, Paweł Horodecki, Michał Horodecki, and Karol Horodecki · 2009
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Tomography of quantum detectors
JS Lundeen, A Feito, H Coldenstrodt-Ronge, KL Pregnell, Ch Silberhorn, TC Ralph, J Eisert, MB Plenio, and IA Walmsley · 2009
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Efficient quantum circuits for one-way quantum computing
Tetsufumi Tanamoto, Yu-xi Liu, Xuedong Hu, and Franco Nori · 2009
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Generation of three-qubit entangled states using superconducting phase qubits
Matthew Neeley, Radoslaw C Bialczak, M Lenander, Erik Lucero, Matteo Mariantoni, AD O’Connell, D Sank, H Wang, M Weides, J Wenner, et al · 2010
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Preparation and measurement of three-qubit entanglement in a superconducting circuit
Validating quantum computers using randomized model circuits
Andrew W Cross, Lev S Bishop, Sarah Sheldon, Paul D Nation, and Jay M Gambetta · 2019
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Direct randomized benchmarking for multiqubit devices
Timothy J. Proctor, Arnaud Carignan-Dugas, Kenneth Rudinger, Erik Nielsen, Robin Blume-Kohout, and Kevin Young · 2019
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Entanglement in a 20-qubit superconducting quantum computer
Gary J Mooney, Charles D Hill, and Lloyd C L Hollenberg · 2019
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Generation and manipulation of Schrödinger cat states in Rydberg atom arrays
Ahmed Omran, Harry Levine, Alexander Keesling, Giulia Semeghini, Tout T Wang, Sepehr Ebadi, Hannes Bernien, Alexander S Zibrov, Hannes Pichler, Soonwon Choi, et al · 2019
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Quantum bits with josephson junctions
Anton Frisk Kockum and Franco Nori · 2019
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Detecting multipartite entanglement structure with minimal resources
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Leonardo DiCarlo, Matthew D Reed, Luyan Sun, Blake R Johnson, Jerry M Chow, Jay M Gambetta, Luigi Frunzio, Steven M Girvin, Michel H Devoret, and Robert J Schoelkopf · 2010
Cited alongside, same era.
Direct fidelity estimation from few Pauli measurements
Steven T Flammia and Yi-Kai Liu · 2011
Cited alongside, same era.
Practical characterization of quantum devices without tomography
Marcus P da Silva, Olivier Landon-Cardinal, and David Poulin · 2011
Cited alongside, same era.
Quantum computing and the entanglement frontier
John Preskill · 2012
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Efficient method for computing the maximum-likelihood quantum state from measurements with additive gaussian noise
John A Smolin, Jay M Gambetta, and Graeme Smith · 2012
Cited alongside, same era.
Superconducting quantum circuits at the surface code threshold for fault tolerance
Rami Barends, Julian Kelly, Anthony Megrant, Andrzej Veitia, Daniel Sank, Evan Jeffrey, Ted C White, Josh Mutus, Austin G Fowler, Brooks Campbell, et al · 2014
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Demonstration of qubit operations below a rigorous fault tolerance threshold with gate set tomography
Robin Blume-Kohout, John King Gamble, Erik Nielsen, Kenneth Rudinger, Jonathan Mizrahi, Kevin Fortier, and Peter Maunz · 2017
Cited alongside, same era.
You Zhou, Qi Zhao, Xiao Yuan, and Xiongfeng Ma · 2019
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https://dx.doi.org/10.5281/zenodo.2562110 , 2019
Qiskit: An Open-source Framework for Quantum Computing · 2019
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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
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Detecting crosstalk errors in quantum information processors
Mohan Sarovar, Timothy Proctor, Kenneth Rudinger, Kevin Young, Erik Nielsen, and Robin Blume-Kohout · 2020
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Verifying multipartite entangled Greenberger-Horne-Zeilinger states via multiple quantum coherences
Ken X Wei, Isaac Lauer, Srikanth Srinivasan, Neereja Sundaresan, Douglas T McClure, David Toyli, David C McKay, Jay M Gambetta, and Sarah Sheldon · 2020
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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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Mitigation of readout noise in near-term quantum devices by classical post-processing based on detector tomography
Filip B Maciejewski, Zoltán Zimborás, and Michał Oszmaniec · 2020
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Advanced quantum supremacy using a hybrid algorithm for linear systems of equations
MR Perelshtein, AI Pakhomchik, AA Melnikov, AA Novikov, A Glatz, GS Paraoanu, VM Vinokur, and GB Lesovik · 2020
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Experimental test of non-macrorealistic cat states in the cloud
Huan-Yu Ku, Neill Lambert, Feng-Jui Chan, Clive Emary, Yueh-Nan Chen, and Franco Nori · 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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Generation and verification of 27-qubit Greenberger-Horne-Zeilinger states in a superconducting quantum computer
Gary J Mooney, Gregory A L White, Charles D Hill, and Lloyd C L Hollenberg · 2021
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Compact ion-trap quantum computing demonstrator
Ivan Pogorelov, Thomas Feldker, Ch D Marciniak, Lukas Postler, Georg Jacob, Oliver Krieglsteiner, Verena Podlesnic, Michael Meth, Vlad Negnevitsky, Martin Stadler, et al · 2021
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Testing scalable Bell inequalities for quantum graph states on IBM quantum devices
Bo Yang, Rudy Raymond, Hiroshi Imai, Hyungseok Chang, and Hidefumi Hiraishi · 2021
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https://quantum-computing.ibm.com , 2021
IBM Quantum · 2021
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