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Simulating quantum error mitigation in fermionic encodings

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arxiv 2303.02270 v2 pith:IXVWNOEF submitted 2023-03-04 quant-ph

Simulating quantum error mitigation in fermionic encodings

classification quant-ph
keywords quantumerrormitigationsimulationstabilizerdimensionencodingsfactor
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The most scalable proposed methods of simulating lattice fermions on noisy quantum computers employ encodings that eliminate nonlocal operators using a constant factor more qubits and a nontrivial stabilizer group. In this work, we investigated the most straightforward error mitigation strategy using the stabilizer group, stabilizer postselection, that is very natural to the setting of fermionic quantum simulation. We numerically investigate the performance of the error mitigation strategy on a range of systems containing up to 42 qubits and on a number of fundamental quantum simulation tasks including non-equilibrium dynamics and variational ground state calculations. We find that at reasonable noise rates and system sizes, the fidelity of computations can be increased significantly beyond what can be achieved with the standard Jordan-Wigner transformation at the cost of increasing the number of shots by less than a factor of 10, potentially providing a meaningful boost to near-term quantum simulations. Our simulations are enabled by new classical simulation algorithms that scale with the logical Hilbert space dimension rather than the physical Hilbert space dimension.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Efficient Simulation of Sparse, Non-Local Fermion Models

    quant-ph 2025-12 unverdicted novelty 6.0

    An auxiliary-fermion encoding removes Jordan-Wigner strings for sparse non-local fermion models, achieving asymptotically optimal Trotter circuit depth on qubits after one-time state preparation.

  2. Near-Term Fermionic Simulation with Subspace Noise Tailored Quantum Error Mitigation

    quant-ph 2025-03 unverdicted novelty 6.0

    SNT merges SV and PEC for subspace-tailored error mitigation in Trotterized FHM simulations, mapping out optimal combinations by hardware quality and shot budget while quantifying when noisy devices could surpass clas...