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September 23, 20250 citationsOpen Access

No-go theorems for logical gates on product quantum codes

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XFXiaojun FuHZHan ZhengZLZimu Li

Key Points

  • Non-Clifford logical gates cannot be implemented transversally on hypergraph product codes.
  • Different dimensions limit the access to various levels of the Clifford hierarchy in local circuits.
  • The findings extend knowledge of logical gates beyond geometrically local codes, impacting fault tolerance.
  • The research may guide future investigations into fault-tolerant quantum computation using qLDPC codes.

Abstract

Quantum error-correcting codes are essential to the implementation of fault-tolerant quantum computation. Homological products of classical codes offer a versatile framework for constructing quantum error-correcting codes with desirable properties, especially quantum low-density parity check (qLDPC) codes. Based on extensions of the Bravyi--König theorem that encompass codes without geometric locality, we establish a series of general no-go theorems for fault-tolerant logical gates supported by hypergraph product codes. Specifically, we show that non-Clifford logical gates cannot be implemented transversally on hypergraph product codes of all product dimensions, and that the dimensions impose various limitations on the accessible level of the Clifford hierarchy gates by constant-depth local circuits. We also discuss examples both with and without geometric locality which attain the Clifford hierarchy bounds. Our results reveal fundamental restrictions on logical gates originating from highly general algebraic structures, extending beyond existing knowledge only in geometrically local, finite logical qubits, transversal, or 2-dimensional product cases, and may guide the vital study of fault-tolerant quantum computation with qLDPC codes.

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Cite This Study

Fu et al. (2025) studied this question.

synapsesocial.com/papers/68d4759931b076d99fa6dabfhttps://doi.org/10.48550/arxiv.2507.16797
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Fast and Parallelizable Logical Computation with Homological Product Codes2024
  2. 2Logical Operators and Fold-Transversal Gates of Bivariate Bicycle Codes2024
  3. 3Implementing fault-tolerant non-Clifford gates using the [[8,3,2]] color code2024 · 11 citations
  4. 4Targeted Clifford logical gates for hypergraph product codes2025
  5. 5The Physics of (good) LDPC Codes II. Product constructions2024 · 2 citations