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Optimized noise-resilient surface code teleportation interfaces

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arxiv 2503.04968 v1 pith:BYO3WQHX submitted 2025-03-06 quant-ph

classification quant-ph
keywords codesurfacecodeserrorsinterfaceinterfacesmodularnoise
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Connecting two surface-code patches may require significantly higher noise at the interface. We show, via circuit-level simulations under a depolarizing noise model with idle errors, that surface codes remain fault tolerant despite substantially elevated interface error rates. Specifically, we compare three strategies -- direct noisy links, gate teleportation, and a CAT-state gadget -- for both rotated and unrotated surface codes, and demonstrate that careful design can mitigate hook errors in each case so that the full code distance is preserved for both $X$ and $Z$. Although these methods differ in space and time overhead and performance, each offers a viable route to modular surface-code architectures. Our results, obtained with Stim and PyMatching, confirm that high-noise interfaces can be integrated fault-tolerantly without compromising the code's essential properties, indicating that fault-tolerant scaling of error-corrected modular devices is within reach with current technology.

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Cited by 1 Pith paper

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    quant-ph 2025-08 conditional novelty 6.0 of 10

    GMZI-based decentralized switch designs achieve any-to-any module connectivity with half the active depth and coupler count of GMZI-Spanke switches.

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