Improved rate-distance trade-offs for quantum codes with restricted connectivity

July 06, 2023 Β· Declared Dead Β· πŸ› Quantum Science and Technology

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Authors NouΓ©dyn Baspin, Venkatesan Guruswami, Anirudh Krishna, Ray Li arXiv ID 2307.03283 Category quant-ph: Quantum Computing Cross-listed cs.IT Citations 18 Venue Quantum Science and Technology Last Checked 5 months ago
Abstract
For quantum error-correcting codes to be realizable, it is important that the qubits subject to the code constraints exhibit some form of limited connectivity. The works of Bravyi & Terhal (BT) and Bravyi, Poulin & Terhal (BPT) established that geometric locality constrains code properties -- for instance $[[n,k,d]]$ quantum codes defined by local checks on the $D$-dimensional lattice must obey $k d^{2/(D-1)} \le O(n)$. Baspin and Krishna studied the more general question of how the connectivity graph associated with a quantum code constrains the code parameters. These trade-offs apply to a richer class of codes compared to the BPT and BT bounds, which only capture geometrically-local codes. We extend and improve this work, establishing a tighter dimension-distance trade-off as a function of the size of separators in the connectivity graph. We also obtain a distance bound that covers all stabilizer codes with a particular separation profile, rather than only LDPC codes.
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