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Towards Distributed Quantum Error Correction for Distributed Quantum Computing

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arxiv 2409.05244 v1 pith:6TAJTMGK submitted 2024-09-08 quant-ph

Towards Distributed Quantum Error Correction for Distributed Quantum Computing

classification quant-ph
keywords quantumqubitsproposedarchitecturelogicalthreecomputingdistributed
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum computing as a promising technology can utilize stochastic solutions instead of deterministic approaches for complicated scenarios for which classical computing is inefficient, provided that both the concerns of the error-prone nature of qubits and the limitation of the number of qubits are addressed carefully. In order to address both concerns, a new qubit-based Distributed Quantum Error Correction (DQEC) architecture is proposed in which three physical qubits residing on three Quantum Processing Units (QPU) are used to form a logical qubit. This paper illustrates how three QPUs collaboratively generate a joint quantum state in which single bit-flip and phase-flip errors can be properly resolved. By reducing the number of qubits required to form a logical qubit in the proposed architecture, each QPU with its limited number of physical qubits can accommodate more logical qubits than when it has to devote its three physical qubits for each logical qubit. The functional correctness of the proposed architecture is evaluated through the Qiskit tool and stabilizer generators. Moreover, the fidelity of input and output quantum states, the complexity of the proposed designs, and the dependency between error probability and correctness of the proposed architecture are analyzed to prove its effectiveness.

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Cited by 2 Pith papers

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  1. Distributed Quantum Error Correction with Bivariate Bicycle Codes in a Modular Architecture

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    The [[144,12,12]] bivariate bicycle code is distributed across 4 to 12 processors in a star network, with simulations showing logical error rates under varying nonlocal noise scaling.

  2. Near-Term Reduction in Nonlocal Gate Count from Distributed Logical Qubits

    quant-ph 2026-04 unverdicted novelty 5.0

    Qubit allocation techniques for distributed color-code logical qubits achieve a 10% reduction in nonlocal gates that scales with more qubits, plus evaluations of methods for universal gate sets including a logical-swa...