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Cost-Effective Scalable Quantum Error Mitigation for Tiled Ansätze.

Nov 2025 · Journal of Chemical Theory and Computation · Vol 22 16, pp. 8188-8200 · 4 citations · 40 references
Medicine Physics

TL;DR

The technique, tiled M0, leverages the unique structure of tiled Ansätze to apply a locality approximation to M0 that results in an exponential reduction in the QPU cost of the noise characterization, highlighting its potential use in near-term applications.

Abstract

We introduce a cost-effective quantum error mitigation technique that builds upon the recent Ansatz-based gate and readout error mitigation method (M0). The technique, tiled M0, leverages the unique structure of tiled Ansätze (e.g., tUPS, QNP, and hardware-efficient circuits) to apply a locality approximation to M0 that results in an exponential reduction in the QPU cost of the noise characterization. We validate the technique for molecular ground-state energy calculations with the tUPS Ansatz on LiH, H2, H2O, butadiene, and benzene (4-12 qubits), demonstrating little to no loss in accuracy compared to M0 in noisy simulations. We also show the performance of the technique in quantum experiments, highlighting its potential use in near-term applications.

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