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Reducing the number of measurements required to estimate the expectation value of an observable is crucial for the variational quantum eigensolver to become competitive with state-of-the-art classical algorithms.
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S. Hillmich, C. Hadfield, R. Raymond, A. Mezzacapo, and R. Wille, “Decision diagrams for quantum measurements with shallow circuits,” in 2021 IEEE International Conference on Quantum Computing and Engineering (QCE) (2021) pp. 24–34
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T.-C. Yen, V. Verteletskyi, and A. F. Izmaylov, “Measuring all compatible operators in one series of single-qubit measurements using unitary transformations,” J. Chem. Theory Comput. 16
2020
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M. Cerezo, A. Arrasmith, R. Babbush, S. C. Benjamin, S. Endo, K. Fujii, J. R. McClean, K. Mitarai, X. Yuan, L. Cincio, and C. P. J, “Variational quantum algorithms,” Nat. Rev. Phys. 3
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O. G. Maupin, A. D. Baczewski, P. J. Love, and A. J. Landahl, “Variational quantum chemistry programs in JaqalPaq,” Entropy 23
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R. A. Lang, I. G. Ryabinkin, and A. F. Izmaylov, “Unitary transformation of the electronic hamiltonian with an exact quadratic truncation of the Baker-Campbell-Hausdorff expansion,” J. Chem. Theory Comput. 17
2021
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A. Anand, P. Schleich, S. Alperin-Lea, P. W. K. Jensen, S. Sim, M. Díaz-Tinoco, J. S. Kottmann, M. Degroote, A. F. Izmaylov, and A. Aspuru-Guzik, “A quantum computing view on unitary coupled cluster theory,” Chem. Soc. Rev. 51
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S. Kalantre, E. Schoute, and D. Wang, “Solutions to assignments from the theory of quantum information,” https://wdaochen.com/documents/tqi_assignments_solutions.pdf , accessed October 3, 2022
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