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Entanglement-assisted Quasi-cyclic Quantum Low-density Parity-check Codes over Qubits

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arxiv 2501.07363 v3 pith:2ZZVJ3BG submitted 2025-01-13 cs.IT math.IT

Entanglement-assisted Quasi-cyclic Quantum Low-density Parity-check Codes over Qubits

classification cs.IT math.IT
keywords codesproposedcodequantumperformanceclassicaldecoderea-qc-qldpc
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We construct several families of entanglement-assisted quasi-cyclic quantum LDPC (EA-QC-QLDPC) codes via structured tilings of permutation matrices. The entanglement-unassisted portion of the joint Tanner graph of the proposed EA-QC-QLDPC code derived from two distinct classical QC-LDPC codes is free of 4-cycles. Notably, one of the proposed families constructed from two distinct classical codes requires only a \textit{single} shared Bell pair between the quantum transmitter and receiver, highlighting its resource efficiency. We also analytically determine the exact code rates for some of the proposed constructions. Furthermore, two of the proposed families of EA-QC-QLDPC codes are derived from a single classical code whose Tanner graphs possess girth greater than six, further enhancing their error-correcting performance. We also propose an encoding scheme with improved complexity by exploiting the proposed code structure. The performance of the proposed codes is assessed under both random and burst error models under the depolarizing and Markovian noise actions. Simulation results reveal nearly one order of improvement in error-correction performance with the quaternary block-layered normalized min-sum (QBLNMS) decoder compared to the layered binary sum-product decoder over both depolarizing and Markovian channels. Using the QBLNMS decoder over a quaternary alphabet, we demonstrate that correlated Pauli errors can be effectively handled within the decoding framework. Furthermore, under the QBLNMS decoding, the proposed codes achieve \textit{significant} performance improvements compared to prior works and can effectively handle both random and burst errors. The code constructions are scalable across various coding rates and quantum payloads, crucial for practical quantum communication and computing systems.

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  1. Optimizing Encoder Circuits of Entanglement-Assisted Quantum LDPC Codes via Beam Search

    quant-ph 2026-06 unverdicted novelty 4.0

    Beam search with Hamming-distance heuristic optimizes SKG encoders for EA QC-LDPC codes, cutting CNOT counts by 7.3-34% versus baseline and outperforming Patel-Markov-Hayes synthesis on tested families.