English

Model-Independent Error Mitigation in Parametric Quantum Circuits and Depolarizing Projection of Quantum Noise

Quantum Physics 2021-12-01 v1 High Energy Physics - Lattice

Abstract

Finding ground states and low-lying excitations of a given Hamiltonian is one of the most important problems in many fields of physics. As a novel approach, quantum computing on Noisy Intermediate-Scale Quantum (NISQ) devices offers the prospect to efficiently perform such computations and may eventually outperform classical computers. However, current quantum devices still suffer from inherent quantum noise. In this work, we propose an error mitigation scheme suitable for parametric quantum circuits. This scheme is based on projecting a general quantum noise channel onto depolarization errors. Our method can efficiently reduce errors in quantum computations, which we demonstrate by carrying out simulations both on classical and IBM's quantum devices. In particular, we test the performance of the method by computing the mass gap of the transverse-field Ising model using the variational quantum eigensolver algorithm.

Keywords

Cite

@article{arxiv.2111.15522,
  title  = {Model-Independent Error Mitigation in Parametric Quantum Circuits and Depolarizing Projection of Quantum Noise},
  author = {Xiaoyang Wang and Xu Feng and Lena Funcke and Tobias Hartung and Karl Jansen and Stefan Kühn and Georgios Polykratis and Paolo Stornati},
  journal= {arXiv preprint arXiv:2111.15522},
  year   = {2021}
}

Comments

12 pages, 4 figures, Proceedings of the 38th International Symposium on Lattice Field Theory, 26th-30th July 2021, Zoom/Gather@Massachusetts Institute of Technology