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Synapse
April 10, 2026Quantum0 citationsOpen Access

Fermionic Averaged Circuit Eigenvalue Sampling

ACAdrian ChapmanSFSteven T. Flammia

Key Points

  • To develop a protocol for learning averaged error rates of fermionic linear optical gates.
  • Developed a flexible protocol for simultaneously characterizing FLO gates.
  • Utilized Kravchuk transformations to analyze sampling complexity.
  • Conducted numerical simulations to support conclusions.
  • Demonstrated efficient sampling complexity of the protocol.
  • Characterized gate-dependent noise under natural assumptions.
  • Highlighted implications for error mitigation in quantum computing architectures.

Abstract

Fermionic averaged circuit eigenvalue sampling (FACES) is a protocol to simultaneously learn the averaged error rates of many fermionic linear optical (FLO) gates simultaneously and self-consistently from a suitable collection of FLO circuits. It is highly flexible, allowing for the in situ characterization of FLO-averaged gate-dependent noise under natural assumptions on a family of continuously parameterized one- and two-qubit gates. We rigorously show that our protocol has an efficient sampling complexity, owing in-part to useful properties of the Kravchuk transformations that feature in our analysis. We support our conclusions with numerical results. As FLO circuits become universal with access to certain resource states, we expect our results to inform noise characterization and error mitigation techniques on universal quantum computing architectures which naturally admit a fermionic description.

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Cite This Study

Chapman et al. (2026) studied this question.

synapsesocial.com/papers/69d896566c1944d70ce07bfdhttps://doi.org/10.22331/q-2026-04-08-2053
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