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Improved accuracy on noisy devices by non-unitary Variational Quantum Eigensolver for chemistry applications
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We propose a modification of the Variational Quantum Eigensolver algorithm for electronic structure optimization using quantum computers, named non-unitary Variational Quantum Eigensolver (nu-VQE), in which a non-unitary operator is combined with the original system Hamiltonian leading to a new variational problem with a simplified wavefunction Ansatz. In the present work, we use, as non-unitary operator, the Jastrow factor, inspired from classical Quantum Monte Carlo techniques for simulation of strongly correlated electrons. The method is applied to prototypical molecular Hamiltonians for which we obtain accurate ground state energies with shallower circuits, at the cost of an increased number of measurements. Finally, we also show that this method achieves an important error mitigation effect that drastically improves the quality of the results for VQE optimizations on today's noisy quantum computers. The absolute error in the calculated energy within our scheme is one order of magnitude smaller than the corresponding result using traditional VQE methods, with the same circuit depth.
Forward citations
Cited by 2 Pith papers
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Multi-QIDA method for VQE state preparation in molecular systems
Multi-QIDA, a layered ansatz built from quantum mutual information of classical RCISD wavefunctions, outperforms the ladder hardware-efficient ansatz at matched CNOT count on five small molecular systems in noiseless ...
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Recent Developments and Perspectives in Variational Quantum Eigensolvers for Molecular Electronic Structure: Methods, Tradeoffs, and Benchmarking
A survey of VQE methods reports that adaptive ansatz methods reach chemical accuracy with fewer parameters than standard UCCSD-VQE in small-molecule benchmarks, with threshold-dependent recommendations.
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