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Generating Fault-Tolerant Cluster States from Crystal Structures

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arxiv 1909.11817 v2 pith:RZIAVZNZ submitted 2019-09-25 quant-ph

Generating Fault-Tolerant Cluster States from Crystal Structures

classification quant-ph
keywords clusterstatesquantumbeyondcodescomputingcrystalerror-correcting
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Measurement-based quantum computing (MBQC) is a promising alternative to traditional circuit-based quantum computing predicated on the construction and measurement of cluster states. Recent work has demonstrated that MBQC provides a more general framework for fault-tolerance that extends beyond foliated quantum error-correcting codes. We systematically expand on that paradigm, and use combinatorial tiling theory to study and construct new examples of fault-tolerant cluster states derived from crystal structures. Included among these is a robust self-dual cluster state requiring only degree-3 connectivity. We benchmark several of these cluster states in the presence of circuit-level noise, and find a variety of promising candidates whose performance depends on the specifics of the noise model. By eschewing the distinction between data and ancilla, this malleable framework lays a foundation for the development of creative and competitive fault-tolerance schemes beyond conventional error-correcting codes.

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