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The Noisy Intermediate-Scale Quantum (NISQ) technology is currently investigated by major players in the field to build the first practically useful quantum computer.
Elementary gates for quantum computation
A. Barenco, C. H. Bennett, R. Cleve, D. DiVinchenzo, N. Margolus, P. Shor, T. Sleator, J. Smolin, and H. Weinfurter · 1995
Earlier work this paper cites.
A new universal and fault-tolerant quantum basis
P. O. Boykin, T. Mor, M. Pulver, V. Roychowdhury, and F. Vatan · 2000
Earlier work this paper cites.
Implementation of Shor’s algorithm on a linear nearest neighbour qubit array
A. G. Fowler, S. J. Devitt, and L. C. Hollenberg · 2004
Earlier work this paper cites.
Optimal quantum circuits for general two-qubit gates
F. Vatan and C. Williams · 2004
Earlier work this paper cites.
Representation of quantum circuits with Clifford and
K. Matsumoto and K. Amano · 2008
Earlier work this paper cites.
Elementary quantum gate realizations for multiple-control Toffolli gates
D. M. Miller, R. Wille, and Z. Sasanian · 2011
Earlier work this paper cites.
Scaffold: Quantum programming language
A. J. Abhari, A. Faruque, M. J. Dousti, L. Svec, O. Catu, A. Chakrabati, C.-F. Chiang, S. Vanderwilt, J. Black, and F. Chong · 2012
Earlier work this paper cites.
A meet-in-the-middle algorithm for fast synthesis of depth-optimal quantum circuits
M. Amy, D. Maslov, M. Mosca, and M. Roetteler · 2013
Earlier work this paper cites.
Quipper: a scalable quantum programming language
A. S. Green, P. L. Lumsdaine, N. J. Ross, P. Selinger, and B. Valiron · 2013
Earlier work this paper cites.
Improving the mapping of reversible circuits to quantum circuits using multiple target lines
R. Wille, M. Soeken, C. Otterstedt, and R. Drechsler · 2013
Earlier work this paper cites.
Qubit placement to minimize communication overhead in 2d quantum architectures
A. Shafaei, M. Saeedi, and M. Pedram · 2014
Cited alongside, same era.
Exact reordering of circuit lines for nearest neighbor quantum architectures
R. Wille, A. Lye, and R. Drechsler · 2014
Cited alongside, same era.
A functional architecture for scalable quantum computing
E. A. Sete, W. J. Zeng, and C. T. Rigetti · 2016
Cited alongside, same era.
Look-ahead schemes for nearest neighbor optimization of 1d and 2d quantum circuits
R. Wille, O. Keszocze, M. Walter, P. Rohrs, A. Chattopadhyay, and R. Drechsler · 2016
Cited alongside, same era.
https://www.research.ibm.com/ibm-q/
IBM Q · 2017
Cited alongside, same era.
https://github.com/QISKit/ibmqx-backend-information
IBM QX backend information · 2017
Cited alongside, same era.
Exact global reordering for nearest neighbor quantum circuits using
A. Zulehner, S. Gasser, and R. Wille · 2017
Later among the works it cites.
https://quantumexperience.ng.bluemix.net/qx/devices
IBM QX Devices · 2018
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https://qx-awards.mybluemix.net/#qiskitDeveloperChallengeAward
QISKit Developer Challenge · 2018
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Quantum computing: Both here and not here
L. Gomes · 2018
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CES 2018: Intel’s 49-qubit chip shoots for quantum supremacy
J. Hsu · 2018
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Quantum computing in the NISQ era and beyond
J. Preskill · 2018
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https://github.com/QISKit/qiskit-sdk-py
QISKit Python SDK · 2017
Cited alongside, same era.
Depth-optimal quantum circuit placement for arbitrary topologies
D. Bhattacharjee and A. Chattopadhyay · 2017
Cited alongside, same era.
Google aims for quantum computing supremacy
R. Courtland · 2017
Cited alongside, same era.
Open quantum assembly language
A. W. Cross, L. S. Bishop, J. A. Smolin, and J. M. Gambetta · 2017
Cited alongside, same era.
Qubit allocation
M. Siraichi, V. F. Dos Santos, S. Collange, and F. M. Q. Pereira · 2018
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Compiling quantum circuits to realistic hardware architectures using temporal planners
D. Venturelli, M. Do, E. Rieffel, and J. Frank · 2018
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An efficient methodology for mapping quantum circuits to the IBM QX architectures
A. Zulehner, A. Paler, and R. Wille · 2018
Closest in time.