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April 26, 2026npj Quantum Information0 citationsOpen Access

Near-term fermionic simulation with subspace noise tailored quantum error mitigation

MPMiha PapičMAManuel G. AlgabaEGEmiliano Godinez-Ramirez

Key Points

  • This research aims to enhance the fidelity of quantum calculations through tailored error mitigation techniques.
  • Introduced the Subspace Noise Tailoring algorithm, combining Symmetry Verification and Probabilistic Error Cancellation methods.
  • Simulated the Trotterized time evolution of the spin-1/2 Fermi-Hubbard model using various local fermion-to-qubit encodings.
  • Explored different combinations of quantum error mitigation techniques and encodings to determine optimal performance.
  • Achieved significant improvements in simulation reach for fermionic lattice sites and Trotter steps.
  • Quantified the hardware performance required for a noisy quantum device to match classical computational methods.
  • Uncovered a rich state diagram of effective combinations for varying hardware and system size.

Abstract

Quantum error mitigation (QEM) has emerged as a powerful tool for the extraction of useful quantum information from quantum devices. Here, we introduce the Subspace Noise Tailoring (SNT) algorithm, which efficiently combines the cheap cost of Symmetry Verification (SV) and low bias of Probabilistic Error Cancellation (PEC) QEM techniques. We study the performance of our method by simulating the Trotterized time evolution of the spin-1/2 Fermi-Hubbard model (FHM) using a variety of local fermion-to-qubit encodings, which define a computational subspace through a set of stabilizers, the measurement of which can be used to post-select noisy quantum data. We study different combinations of QEM and encodings and uncover a rich state diagram of optimal combinations, depending on the hardware performance, system size and available shot budget. We then demonstrate how SNT extends the reach of current noisy quantum computers in terms of the number of fermionic lattice sites and the number of Trotter steps, and quantify the required hardware performance beyond which a noisy device may compete with current state-of-the-art classical computational methods.

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Cite This Study

Papič et al. (2026) studied this question.

synapsesocial.com/papers/69edacdb4a46254e215b4a0ehttps://doi.org/10.1038/s41534-026-01248-5
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