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Trapped Ion Quantum Computing

Near-Asymptotically-Good Quantum Codes with Transversal CCZ Gates and Sublinear-Weight Parity-Checks

arXiv
Authors: Louis Golowich, Venkatesan Guruswami

Year

2025

Paper ID

51652

Status

Preprint

Abstract Read

~2 min

Abstract Words

254

Citations

N/A

Abstract

It is a major challenge to construct good quantum codes supporting fault-tolerant (e.g. transversal) non-Clifford gates with low-weight parity-check measurements. In this paper, we construct the first known quantum codes with linear dimension and distance supporting transversal non-Clifford gates that have sublinear locality (i.e. parity-check weight). Specifically, we construct codes with transversal CCZ gates that have dimension and distance Θ(N) and locality O\(sqrt{N}\), where N denotes the block length. We furthermore design an efficient decoding algorithm for these codes. The alphabet size of these codes is q=Θ\(sqrt{N}\), but it can be reduced to a constant e.g. $q=2$ while incurring a polylogarithmic loss in other parameters. We also show how to decrease the locality to O\(N1/3\), albeit with a larger alphabet size and slightly lower distance. We construct these codes as products of classical codes with appropriate algebraic structure. While our quantum codes are subsystem codes with non-commuting gauge operators, we show they nevertheless permit error correction from noisy syndrome measurements. As byproducts, we prove multiple technical results of independent interest. In particular, our efficient decoder can be viewed as a new multivariate generalization of Prony's method for reconstructing a function from partial access to its Fourier transform. Meanwhile, our distance analysis involves new connections to the classical study of maximally recoverable codes. Our results on product codes also resolve a conjecture of Bravyi & Hastings (2014) in the large-alphabet regime, by providing a new construction of quantum codes with dimension and distance Θ(N) and locality N^ε for arbitrary ε>0.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2025 reference point for readers tracking recent quantum research.
  • It is a major challenge to construct good quantum codes supporting fault-tolerant (e.g.

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