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Surface code quantum computing by lattice surgery

New Journal of Physics · 2012 · Vol. 14(12) · pp. 123011–123011
Dominic HorsmanAustin G FowlerSimon DevittRodney Van Meter

Abstract

Abstract In recent years, surface codes have become a leading method for quantum error correction in theoretical large-scale computational and communications architecture designs. Their comparatively high fault-tolerant thresholds and their natural two-dimensional nearest-neighbour (2DNN) structure make them an obvious choice for large scale designs in experimentally realistic systems. While fundamentally based on the toric code of Kitaev, there are many variants, two of which are the planar- and defect-based codes. Planar codes require fewer qubits to implement (for the same strength of error correction), but are restricted to encoding a single qubit of information. Interactions between encoded qubits are achieved via transversal operations, thus destroying the inherent 2DNN nature of the code. In this paper we introduce a new technique enabling the coupling of two planar codes without transversal operations, maintaining the 2DNN of the encoded computer. Our lattice surgery technique comprises splitting and merging planar code surfaces, and enables us to perform universal quantum computation (including magic state injection) while removing the need for braided logic in a strictly 2DNN design, and hence reduces the overall qubit resources for logic operations. Those resources are further reduced by the use of a rotated lattice for the planar encoding. We show how lattice surgery allows us to distribute encoded GHZ states in a more direct (and overhead friendly) manner, and how a demonstration of an encoded CNOT between two distance-3 logical states is possible with 53 physical qubits, half of that required in any other known construction in 2D.

Quantum Computing Algorithms and ArchitectureQuantum-Dot Cellular AutomataQuantum and electron transport phenomenaQubitQuantum computerPlanarLattice (music)ComputationMAGIC (telescope)Quantum error correctionQuantum
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548
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References
Topological quantum memory
Journal of Mathematical Physics · 2002 · 1,606 citations
Topological fault-tolerance in cluster state quantum computation
New Journal of Physics · 2007 · 606 citations
Fault-tolerant quantum computation by anyons
Annals of Physics · 2003 · 7,123 citations
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