Error-Mitigated Quantum Simulation of Interacting Fermions with Trapped Ions

Fuente: arXiv
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Auteurs principaux: Chen, Wentao, Zhang, Shuaining, Zhang, Jialiang, Su, Xiaolu, Lu, Yao, Zhang, Kuan, Qiao, Mu, Li, Ying, Zhang, Jing-Ning, Kim, Kihwan
Format: Preprint
Publié: 2023
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author Chen, Wentao
Zhang, Shuaining
Zhang, Jialiang
Su, Xiaolu
Lu, Yao
Zhang, Kuan
Qiao, Mu
Li, Ying
Zhang, Jing-Ning
Kim, Kihwan
author_facet Chen, Wentao
Zhang, Shuaining
Zhang, Jialiang
Su, Xiaolu
Lu, Yao
Zhang, Kuan
Qiao, Mu
Li, Ying
Zhang, Jing-Ning
Kim, Kihwan
contents Quantum error mitigation has been extensively explored to increase the accuracy of the quantum circuits in noisy-intermediate-scale-quantum (NISQ) computation, where quantum error correction requiring additional quantum resources is not adopted. Among various error-mitigation schemes, probabilistic error cancellation (PEC) has been proposed as a general and systematic protocol that can be applied to numerous hardware platforms and quantum algorithms. However, PEC has only been tested in two-qubit systems and a superconducting multi-qubit system by learning a sparse error model. Here, we benchmark PEC using up to four trapped-ion qubits. For the benchmark, we simulate the dynamics of interacting fermions with or without spins by applying multiple Trotter steps. By tomographically reconstructing the error model and incorporating other mitigation methods such as positive probability and symmetry constraints, we are able to increase the fidelity of simulation and faithfully observe the dynamics of the Fermi-Hubbard model, including the different behavior of charge and spin of fermions. Our demonstrations can be an essential step for further extending systematic error-mitigation schemes toward practical quantum advantages.
format Preprint
id arxiv_https___arxiv_org_abs_2302_10436
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Error-Mitigated Quantum Simulation of Interacting Fermions with Trapped Ions
Chen, Wentao
Zhang, Shuaining
Zhang, Jialiang
Su, Xiaolu
Lu, Yao
Zhang, Kuan
Qiao, Mu
Li, Ying
Zhang, Jing-Ning
Kim, Kihwan
Quantum Physics
Strongly Correlated Electrons
Atomic Physics
Quantum error mitigation has been extensively explored to increase the accuracy of the quantum circuits in noisy-intermediate-scale-quantum (NISQ) computation, where quantum error correction requiring additional quantum resources is not adopted. Among various error-mitigation schemes, probabilistic error cancellation (PEC) has been proposed as a general and systematic protocol that can be applied to numerous hardware platforms and quantum algorithms. However, PEC has only been tested in two-qubit systems and a superconducting multi-qubit system by learning a sparse error model. Here, we benchmark PEC using up to four trapped-ion qubits. For the benchmark, we simulate the dynamics of interacting fermions with or without spins by applying multiple Trotter steps. By tomographically reconstructing the error model and incorporating other mitigation methods such as positive probability and symmetry constraints, we are able to increase the fidelity of simulation and faithfully observe the dynamics of the Fermi-Hubbard model, including the different behavior of charge and spin of fermions. Our demonstrations can be an essential step for further extending systematic error-mitigation schemes toward practical quantum advantages.
title Error-Mitigated Quantum Simulation of Interacting Fermions with Trapped Ions
topic Quantum Physics
Strongly Correlated Electrons
Atomic Physics
url https://arxiv.org/abs/2302.10436