English

Using Tanner Spectral Reduction to Improve Multi-Layer Optical Lattice Routing for Hypergraph-Product and Bivariate Bicycle qLDPC Codes

Quantum Physics 2026-07-07 v1 Data Structures and Algorithms

Abstract

We characterize the Tanner graph spectrum of hypergraph-product (HGP) / lifted-product (LP) codes and bivariate-bicycle (BB) codes, informing qubit routing for three-dimensional reconfigurable qubit architectures. Syndrome-extraction routing depth on HGP/LP Tanner graphs reduces to a single SVD on the base parity-check matrix, using a spectral ratio βHGP=(1+βbase)/2\beta_\text{HGP} = (1 + \beta_\text{base})/2 where βbase=σ2(H)/σ1(H)\beta_\text{base} = \sigma_2(H)/\sigma_1(H) for the base parity-check matrix, and a diameter identity DT=2DbaseD_T = 2 D_\text{base} where DbaseD_\text{base} is the base Tanner graph diameter. Fourier spectral reduction reveals that the BB Tanner graph spectrum equals the union, over the l×ml \times m grid of characters of Zl×Zm\mathbb{Z}_l \times \mathbb{Z}_m, of the singular values of a single 2×22 \times 2 symbol matrix built from the two defining polynomials. This reduces spectral analysis from an O((lm)3)O((lm)^3) diagonalization of the 4lm4lm-node Tanner graph to lmlm independent 2×22 \times 2 SVDs. These results compose into a multi-layer three-dimensional AOL routing protocol with one-time setup cost TValiant=O(logN)T_\text{Valiant} = O(\log N) atom rearrangements amortizable over a memory experiment of RR rounds. For a Tanner graph chromatic index χ\chi' and LlayersL_\text{layers} stacked AOL planes, the per-syndrome-cycle depth is χ/Llayers\lceil \chi'/L_\text{layers} \rceil AOL pattern activations with no atom motion, an 8×8\times step-count reduction at Llayersχ=8L_\text{layers} \geq \chi' = 8. Contingent on multi-layer AOL hardware, this yields an estimated 50300×\sim50-300\times per-cycle wall-clock advantage over a single-layer AOD baseline (degrading to 5100×\sim5-100\times under AOD-crosstalk overhead), reducing to equality in the single-layer limit. This paper therefore presents a route toward practical routing improvement for future quantum hardware incorporating multi-layer reconfigurable qubit architectures.

Cite

@article{arxiv.2607.06177,
  title  = {Using Tanner Spectral Reduction to Improve Multi-Layer Optical Lattice Routing for Hypergraph-Product and Bivariate Bicycle qLDPC Codes},
  author = {Joshua M. Courtney},
  journal= {arXiv preprint arXiv:2607.06177},
  year   = {2026}
}

Comments

24 pages, 3 figures, 9 tables

R2 v1 2026-07-22T20:28:28.362Z